X-Git-Url: https://bilbo.iut-bm.univ-fcomte.fr/and/gitweb/mpi-energy2.git/blobdiff_plain/26cbe1ae1953d2db886af547cac5067e697ac555..71a2ec18276dbbb8ee0dc07e9a390d558eda81d7:/mpi-energy2-extension/Heter_paper.tex?ds=sidebyside diff --git a/mpi-energy2-extension/Heter_paper.tex b/mpi-energy2-extension/Heter_paper.tex index e30d62c..b6839ce 100644 --- a/mpi-energy2-extension/Heter_paper.tex +++ b/mpi-energy2-extension/Heter_paper.tex @@ -1,4 +1,41 @@ -\documentclass[conference]{IEEEtran} +\documentclass[review]{elsarticle} + +\usepackage{lineno,hyperref} +\modulolinenumbers[5] + +\journal{Journal of Computational Science} + +%%%%%%%%%%%%%%%%%%%%%%% +%% Elsevier bibliography styles +%%%%%%%%%%%%%%%%%%%%%%% +%% To change the style, put a % in front of the second line of the current style and +%% remove the % from the second line of the style you would like to use. +%%%%%%%%%%%%%%%%%%%%%%% + +%% Numbered +%\bibliographystyle{model1-num-names} + +%% Numbered without titles +%\bibliographystyle{model1a-num-names} + +%% Harvard +%\bibliographystyle{model2-names.bst}\biboptions{authoryear} + +%% Vancouver numbered +%\usepackage{numcompress}\bibliographystyle{model3-num-names} + +%% Vancouver name/year +%\usepackage{numcompress}\bibliographystyle{model4-names}\biboptions{authoryear} + +%% APA style +%\bibliographystyle{model5-names}\biboptions{authoryear} + +%% AMA style +%\usepackage{numcompress}\bibliographystyle{model6-num-names} + +%% `Elsevier LaTeX' style +\bibliographystyle{elsarticle-num} +%%%%%%%%%%%%%%%%%%%%%%% \usepackage[T1]{fontenc} \usepackage[utf8]{inputenc} @@ -6,6 +43,7 @@ \usepackage{algpseudocode} \usepackage{graphicx} \usepackage{algorithm} +\usepackage{setspace} \usepackage{subfig} \usepackage{amsmath} \usepackage{url} @@ -54,52 +92,228 @@ \newcommand{\Sopt}[1][]{\Xsub{S}{opt}_{#1}} \newcommand{\Tcm}[1][]{\Xsub{T}{cm}_{\fxheight{#1}}} \newcommand{\Tcp}[1][]{\Xsub{T}{cp}_{#1}} -\newcommand{\Pmax}[1][]{\Xsub{P}{max}_{#1}} +\newcommand{\Pmax}[1][]{\Xsub{P}{max}_{\fxheight{#1}}} \newcommand{\Pidle}[1][]{\Xsub{P}{idle}_{\fxheight{#1}}} \newcommand{\TcpOld}[1][]{\Xsub{T}{cpOld}_{#1}} \newcommand{\Tnew}{\Xsub{T}{New}} \newcommand{\Told}{\Xsub{T}{Old}} + + + \begin{document} -\title{Energy Consumption Reduction with DVFS for \\ - Message Passing Iterative Applications on \\ - Heterogeneous Architectures} - -\author{% - \IEEEauthorblockN{% - Jean-Claude Charr, - Raphaël Couturier, - Ahmed Fanfakh and - Arnaud Giersch - } - \IEEEauthorblockA{% - FEMTO-ST Institute, University of Franche-Comté\\ +\begin{frontmatter} + + + +\title{Energy Consumption Reduction with DVFS for Message \\ + Passing Iterative Applications on \\ + Grid Architecture} + + + + +\author{Ahmed Fanfakh, + Jean-Claude Charr, + Raphaël Couturier, + and Arnaud Giersch} + +\address{FEMTO-ST Institute, University of Franche-Comté\\ IUT de Belfort-Montbéliard, 19 avenue du Maréchal Juin, BP 527, 90016 Belfort cedex, France\\ % Telephone: \mbox{+33 3 84 58 77 86}, % Raphaël % Fax: \mbox{+33 3 84 58 77 81}\\ % Dept Info - Email: \email{{jean-claude.charr,raphael.couturier,ahmed.fanfakh_badri_muslim,arnaud.giersch}@univ-fcomte.fr} + Email: \email{{ahmed.fanfakh_badri_muslim,jean-claude.charr,raphael.couturier,arnaud.giersch}@univ-fcomte.fr} } - } - -\maketitle \begin{abstract} - + In recent years, green computing has become an important topic + in the supercomputing research domain. However, the + computing platforms are still consuming more and +more energy due to the increasing number of nodes composing +them. To minimize the operating costs of these platforms many +techniques have been used. Dynamic voltage and frequency +scaling (DVFS) is one of them. It can be used to reduce the power consumption of the CPU + while computing, by lowering its frequency. However, lowering the frequency of + a CPU may increase the execution time of an application running on that + processor. Therefore, the frequency that gives the best trade-off between + the energy consumption and the performance of an application must be selected. + In this paper, a new online frequency selecting algorithm for grids, composed of heterogeneous clusters, is presented. + It selects the frequencies and tries to give the best + trade-off between energy saving and performance degradation, for each node + computing the message passing iterative application. + The algorithm has a small + overhead and works without training or profiling. It uses a new energy model + for message passing iterative applications running on a grid. + The proposed algorithm is evaluated on a real grid, the grid'5000 platform, while + running the NAS parallel benchmarks. The experiments show that it reduces the + energy consumption on average by \np[\%]{30} while the performance is only degraded + on average by \np[\%]{3.2}. Finally, the algorithm is + compared to an existing method. The comparison results show that it outperforms the + latter in terms of energy consumption reduction and performance. \end{abstract} -\section{Introduction} -\label{sec.intro} + +\begin{keyword} + +Dynamic voltage and frequency scaling \sep Grid computing\sep Green computing and frequency scaling online algorithm. + +%% keywords here, in the form: keyword \sep keyword + +%% MSC codes here, in the form: \MSC code \sep code +%% or \MSC[2008] code \sep code (2000 is the default) + +\end{keyword} + +\end{frontmatter} +\section{Introduction} +\label{sec.intro} +The need for more computing power is continually increasing. To partially +satisfy this need, most supercomputers constructors just put more computing +nodes in their platform. The resulting platforms may achieve higher floating +point operations per second (FLOPS), but the energy consumption and the heat +dissipation are also increased. As an example, the Chinese supercomputer +Tianhe-2 had the highest FLOPS in June 2015 according to the Top500 list +\cite{TOP500_Supercomputers_Sites}. However, it was also the most power hungry +platform with its over 3 million cores consuming around 17.8 megawatts. +Moreover, according to the U.S. annual energy outlook 2015 +\cite{U.S_Annual.Energy.Outlook.2015}, the price of energy for 1 megawatt-hour +was approximately equal to \$70. Therefore, the price of the energy consumed by +the Tianhe-2 platform is approximately more than \$10 million each year. The +computing platforms must be more energy efficient and offer the highest number +of FLOPS per watt possible, such as the Shoubu-ExaScaler from RIKEN +which became the top of the Green500 list in June 2015 \cite{Green500_List}. +This heterogeneous platform executes more than 7 GFLOPS per watt while consuming +50.32 kilowatts. + +Besides platform improvements, there are many software and hardware techniques +to lower the energy consumption of these platforms, such as scheduling, DVFS, +\dots{} DVFS is a widely used process to reduce the energy consumption of a +processor by lowering its frequency +\cite{Rizvandi_Some.Observations.on.Optimal.Frequency}. However, it also reduces +the number of FLOPS executed by the processor which may increase the execution +time of the application running over that processor. Therefore, researchers use +different optimization strategies to select the frequency that gives the best +trade-off between the energy reduction and performance degradation ratio. In +\cite{Our_first_paper} and \cite{pdsec2015} , a frequencies selecting algorithm was proposed to reduce +the energy consumption of message passing iterative applications running over +homogeneous and heterogeneous clusters respectively. +The results of the experiments showed significant energy +consumption reductions. All the experimental results were conducted over +Simgrid simulator \cite{SimGrid}, which offers easy tools to create a homogeneous and heterogeneous platforms and run message passing parallel applications over them. In this paper, a new frequencies selecting algorithm, +adapted to grid platforms composed of heterogeneous clusters, is presented. It is applied to the NAS parallel benchmarks and evaluated over a real testbed, +the grid'5000 platform \cite{grid5000}. It selects for a grid platform running a message passing iterative +application the vector of +frequencies that simultaneously tries to offer the maximum energy reduction and +minimum performance degradation ratios. The algorithm has a very small overhead, +works online and does not need any training or profiling. + + +This paper is organized as follows: Section~\ref{sec.relwork} presents some +related works from other authors. Section~\ref{sec.exe} describes how the +execution time of message passing programs can be predicted. It also presents +an energy model that predicts the energy consumption of an application running +over a grid platform. Section~\ref{sec.compet} presents the +energy-performance objective function that maximizes the reduction of energy +consumption while minimizing the degradation of the program's performance. +Section~\ref{sec.optim} details the proposed frequencies selecting algorithm. +Section~\ref{sec.expe} presents the results of applying the algorithm on the +NAS parallel benchmarks and executing them on the grid'5000 testbed. +It also evaluates the algorithm over multi-cores per node architectures and over three different power scenarios. Moreover, it shows the +comparison results between the proposed method and an existing method. Finally, +in Section~\ref{sec.concl} the paper ends with a summary and some future works. \section{Related works} \label{sec.relwork} +DVFS is a technique used in modern processors to scale down both the voltage and +the frequency of the CPU while computing, in order to reduce the energy +consumption of the processor. DVFS is also allowed in GPUs to achieve the same +goal. Reducing the frequency of a processor lowers its number of FLOPS and may +degrade the performance of the application running on that processor, especially +if it is compute bound. Therefore selecting the appropriate frequency for a +processor to satisfy some objectives, while taking into account all the +constraints, is not a trivial operation. Many researchers used different +strategies to tackle this problem. Some of them developed online methods that +compute the new frequency while executing the application, such +as~\cite{Hao_Learning.based.DVFS,Spiliopoulos_Green.governors.Adaptive.DVFS}. +Others used offline methods that may need to run the application and profile +it before selecting the new frequency, such +as~\cite{Rountree_Bounding.energy.consumption.in.MPI,Cochran_Pack_and_Cap_Adaptive_DVFS}. +The methods could be heuristics, exact or brute force methods that satisfy +varied objectives such as energy reduction or performance. They also could be +adapted to the execution's environment and the type of the application such as +sequential, parallel or distributed architecture, homogeneous or heterogeneous +platform, synchronous or asynchronous application, \dots{} + +In this paper, we are interested in reducing energy for message passing +iterative synchronous applications running over heterogeneous grid platforms. Some +works have already been done for such platforms and they can be classified into +two types of heterogeneous platforms: +\begin{itemize} +\item the platform is composed of homogeneous GPUs and homogeneous CPUs. +\item the platform is only composed of heterogeneous CPUs. +\end{itemize} -\section{The performance and energy consumption measurements on heterogeneous architecture} +For the first type of platform, the computing intensive parallel tasks are +executed on the GPUs and the rest are executed on the CPUs. Luley et +al.~\cite{Luley_Energy.efficiency.evaluation.and.benchmarking}, proposed a +heterogeneous cluster composed of Intel Xeon CPUs and NVIDIA GPUs. Their main +goal was to maximize the energy efficiency of the platform during computation by +maximizing the number of FLOPS per watt generated. +In~\cite{KaiMa_Holistic.Approach.to.Energy.Efficiency.in.GPU-CPU}, Kai Ma et +al. developed a scheduling algorithm that distributes workloads proportional to +the computing power of the nodes which could be a GPU or a CPU. All the tasks +must be completed at the same time. In~\cite{Rong_Effects.of.DVFS.on.K20.GPU}, +Rong et al. showed that a heterogeneous (GPUs and CPUs) cluster that enables +DVFS gave better energy and performance efficiency than other clusters only +composed of CPUs. + +The work presented in this paper concerns the second type of platform, with +heterogeneous CPUs. Many methods were conceived to reduce the energy +consumption of this type of platform. Naveen et +al.~\cite{Naveen_Power.Efficient.Resource.Scaling} developed a method that +minimizes the value of $\mathit{energy}\times \mathit{delay}^2$ (the delay is +the sum of slack times that happen during synchronous communications) by +dynamically assigning new frequencies to the CPUs of the heterogeneous cluster. +Lizhe et al.~\cite{Lizhe_Energy.aware.parallel.task.scheduling} proposed an +algorithm that divides the executed tasks into two types: the critical and non +critical tasks. The algorithm scales down the frequency of non critical tasks +proportionally to their slack and communication times while limiting the +performance degradation percentage to less than \np[\%]{10}. +In~\cite{Joshi_Blackbox.prediction.of.impact.of.DVFS}, they developed a +heterogeneous cluster composed of two types of Intel and AMD processors. They +use a gradient method to predict the impact of DVFS operations on performance. +In~\cite{Shelepov_Scheduling.on.Heterogeneous.Multicore} and +\cite{Li_Minimizing.Energy.Consumption.for.Frame.Based.Tasks}, the best +frequencies for a specified heterogeneous cluster are selected offline using +some heuristic. Chen et +al.~\cite{Chen_DVFS.under.quality.of.service.requirements} used a greedy dynamic +programming approach to minimize the power consumption of heterogeneous servers +while respecting given time constraints. This approach had considerable +overhead. In contrast to the above described papers, this paper presents the +following contributions : +\begin{enumerate} +\item two new energy and performance models for message passing iterative + synchronous applications running over a heterogeneous grid platform. Both models + take into account communication and slack times. The models can predict the + required energy and the execution time of the application. + +\item a new online frequency selecting algorithm for heterogeneous grid + platforms. The algorithm has a very small overhead and does not need any + training or profiling. It uses a new optimization function which + simultaneously maximizes the performance and minimizes the energy consumption + of a message passing iterative synchronous application. + +\end{enumerate} + + + +\section{The performance and energy consumption measurements on heterogeneous grid architecture} \label{sec.exe} \subsection{The execution time of message passing distributed iterative @@ -183,7 +397,7 @@ used in the method to optimize both the energy consumption and the performance of iterative methods, which is presented in the following sections. -\subsection{Energy model for heterogeneous platform} +\subsection{Energy model for heterogeneous grid platform} Many researchers~\cite{Malkowski_energy.efficient.high.performance.computing, Rauber_Analytical.Modeling.for.Energy,Zhuo_Energy.efficient.Dynamic.Task.Scheduling, @@ -289,6 +503,7 @@ static energies for $M$ processors in $N$ clusters. It is computed as follows: +\mathop{\min_{j=1,\dots M}} (\Tcm[hj]) )) \end{multline} + Reducing the frequencies of the processors according to the vector of scaling factors $(S_{11}, S_{12},\dots, S_{NM})$ may degrade the performance of the application and thus, increase the static energy because the execution time is @@ -312,12 +527,15 @@ appropriate frequency scaling factor for each processor while considering the characteristics of each processor (computation power, range of frequencies, dynamic and static powers) and the task executed (computation/communication ratio). The aim being to reduce the overall energy consumption and to avoid -increasing significantly the execution time. In our previous -work~\cite{Our_first_paper,pdsec2015}, we proposed a method that selects the optimal -frequency scaling factor for a homogeneous and heterogeneous clusters executing a message passing -iterative synchronous application while giving the best trade-off between the -energy consumption and the performance for such applications. In this work we -are interested in heterogeneous grid as described above. Due to the +increasing significantly the execution time. +In our previous +works, \cite{Our_first_paper} and \cite{pdsec2015}, two methods that select the optimal +frequency scaling factors for a homogeneous and a heterogeneous cluster respectively, were proposed. +Both methods selects the frequencies that gives the best tradeoff between +energy consumption reduction and performance for message passing +iterative synchronous applications. In this work we +are interested in grids that are composed of heterogeneous clusters were the nodes have different characteristics such as dynamic power, static power, computation power, frequencies range, network latency and bandwidth. +Due to the heterogeneity of the processors, a vector of scaling factors should be selected and it must give the best trade-off between energy consumption and performance. @@ -376,13 +594,12 @@ equation, as follows: \Pnorm = \frac{\Told}{\Tnew} \end{equation} -\begin{figure}[!t] +\begin{figure} \centering \subfloat[Homogeneous cluster]{% - \includegraphics[width=.33\textwidth]{fig/homo}\label{fig:r1}}% - + \includegraphics[width=.4\textwidth]{fig/homo}\label{fig:r1}} \hspace{2cm}% \subfloat[Heterogeneous grid]{% - \includegraphics[width=.33\textwidth]{fig/heter}\label{fig:r2}} + \includegraphics[width=.4\textwidth]{fig/heter}\label{fig:r2}} \label{fig:rel} \caption{The energy and performance relation} \end{figure} @@ -412,11 +629,13 @@ in~\cite{Zhuo_Energy.efficient.Dynamic.Task.Scheduling,Rauber_Analytical.Modelin \label{sec.optim} \begin{algorithm} +\setstretch{1} \begin{algorithmic}[1] % \footnotesize + \Require ~ \begin{description} - \item [{$N$}] number of clusters in the grid. + \item [{$N$}] number of clusters in the grid. \item [{$M$}] number of nodes in each cluster. \item[{$\Tcp[ij]$}] array of all computation times for all nodes during one iteration and with the highest frequency. \item[{$\Tcm[ij]$}] array of all communication times for all nodes during one iteration and with the highest frequency. @@ -444,8 +663,7 @@ in~\cite{Zhuo_Energy.efficient.Dynamic.Task.Scheduling,Rauber_Analytical.Modelin \EndIf \State $\Tnew \gets $ computed as in equations (\ref{eq:perf}). \State $\Ereduced \gets $ computed as in equations (\ref{eq:energy}). - \State $\Pnorm \gets \frac{\Told}{\Tnew}$ - \State $\Enorm\gets \frac{\Ereduced}{\Eoriginal}$ + \State $\Pnorm \gets \frac{\Told}{\Tnew}$, $\Enorm\gets \frac{\Ereduced}{\Eoriginal}$ \If{$(\Pnorm - \Enorm > \Dist)$} \State $\Sopt[ij] \gets S_{ij},~i=1,\dots,N,~j=1,\dots,M_i. $ \State $\Dist \gets \Pnorm - \Enorm$ @@ -478,8 +696,8 @@ in~\cite{Zhuo_Energy.efficient.Dynamic.Task.Scheduling,Rauber_Analytical.Modelin \end{algorithm} - -In this section, the scaling factors selection algorithm for grids, algorithm~\ref{HSA}, is presented. It selects the vector of the frequency +In this section, the scaling factors selection algorithm for grids, algorithm~\ref{HSA}, +is presented. It selects the vector of the frequency scaling factors that gives the best trade-off between minimizing the energy consumption and maximizing the performance of a message passing synchronous iterative application executed on a grid. It works @@ -495,7 +713,7 @@ scaling algorithm is called in the iterative MPI program. \begin{figure}[!t] \centering - \includegraphics[scale=0.45]{fig/init_freq} + \includegraphics[scale=0.6]{fig/init_freq} \caption{Selecting the initial frequencies} \label{fig:st_freq} \end{figure} @@ -567,7 +785,7 @@ maximum distance between the energy curve and the performance curve is, which re \section{Experimental results} \label{sec.expe} -While in~\cite{pdsec2015} the energy model and the scaling factors selection algorithm were applied to a heterogeneous cluster and evaluated over the SimGrid simulator~\cite{SimGrid.org}, +While in~\cite{pdsec2015} the energy model and the scaling factors selection algorithm were applied to a heterogeneous cluster and evaluated over the SimGrid simulator~\cite{SimGrid}, in this paper real experiments were conducted over the grid'5000 platform. \subsection{Grid'5000 architature and power consumption} @@ -583,14 +801,14 @@ Two types of local networks are used, Ethernet or Infiniband networks which have Since grid'5000 is dedicated for testing, contrary to production grids it allows a user to deploy its own customized operating system on all the booked nodes. The user could have root rights and thus apply DVFS operations while executing a distributed application. Moreover, the grid'5000 testbed provides at some sites a power measurement tool to capture the power consumption for each node in those sites. The measured power is the overall consumed power by by all the components of a node at a given instant, such as CPU, hard drive, main-board, memory, ... For more details refer to \cite{Energy_measurement}. To just measure the CPU power of one core in a node $j$, - firstly, the power consumed by the node while being idle at instant $y$, noted as $\Pidle[jy]$, was measured. Then, the power was measured while running a single thread benchmark with no communication (no idle time) over the same node with its CPU scaled to the maximum available frequency. The latter power measured at time $x$ with maximum frequency for one core of node $j$ is noted $Pmax[jx]$. The difference between the two measured power consumption represents the + firstly, the power consumed by the node while being idle at instant $y$, noted as $\Pidle[jy]$, was measured. Then, the power was measured while running a single thread benchmark with no communication (no idle time) over the same node with its CPU scaled to the maximum available frequency. The latter power measured at time $x$ with maximum frequency for one core of node $j$ is noted $\Pmax[jx]$. The difference between the two measured power consumption represents the dynamic power consumption of that core with the maximum frequency, see figure(\ref{fig:power_cons}). The dynamic power $\Pd[j]$ is computed as in equation (\ref{eq:pdyn}) \begin{equation} \label{eq:pdyn} - \Pd[j] = \max_{x=\beta_1,\dots \beta_2} (Pmax[jx]) - \min_{y=\Theta_1,\dots \Theta_2} (\Pidle[jy]) + \Pd[j] = \max_{x=\beta_1,\dots \beta_2} (\Pmax[jx]) - \min_{y=\Theta_1,\dots \Theta_2} (\Pidle[jy]) \end{equation} where $\Pd[j]$ is the dynamic power consumption for one core of node $j$, @@ -599,7 +817,7 @@ $\lbrace\Theta_1,\Theta_2\rbrace$ is the time interval for the measured idle po Therefore, the dynamic power of one core is computed as the difference between the maximum measured value in maximum powers vector and the minimum measured value in the idle powers vector. -On the other hand, the static power consumption by one core is a part of the measured idle power consumption of the node. Since in grid'5000 there is no way to measure precisely the consumed static power and in~\cite{Our_first_paper,pdsec2015,Rauber_Analytical.Modeling.for.Energy} it was assumed that the static power represents a ratio of the dynamic power, the value of the static power is assumed as np[\%]{20} of dynamic power consumption of the core. +On the other hand, the static power consumption by one core is a part of the measured idle power consumption of the node. Since in grid'5000 there is no way to measure precisely the consumed static power and in~\cite{Our_first_paper,pdsec2015,Rauber_Analytical.Modeling.for.Energy} it was assumed that the static power represents a ratio of the dynamic power, the value of the static power is assumed as 20\% of dynamic power consumption of the core. In the experiments presented in the following sections, two sites of grid'5000 were used, Lyon and Nancy sites. These two sites have in total seven different clusters as in figure (\ref{fig:grid5000}). @@ -611,31 +829,24 @@ the details characteristics of these four clusters. Moreover, the dynamic powers selected clusters and are presented in table \ref{table:grid5000}. - - \begin{figure}[!t] \centering \includegraphics[scale=1]{fig/grid5000} \caption{The selected two sites of grid'5000} \label{fig:grid5000} \end{figure} - - -The energy model and the scaling factors selection algorithm were applied to the NAS parallel benchmarks v3.3 \cite{NAS.Parallel.Benchmarks} and evaluated over grid'5000. -The benchmark suite contains seven applications: CG, MG, EP, LU, BT, SP and FT. These applications have different computations and communications ratios and strategies which make them good testbed applications to evaluate the proposed algorithm and energy model. -The benchmarks have seven different classes, S, W, A, B, C, D and E, that represent the size of the problem that the method solves. In this work, the class D was used for all benchmarks in all the experiments presented in the next sections. - - - - \begin{figure}[!t] \centering \includegraphics[scale=0.6]{fig/power_consumption.pdf} - \caption{The power consumption by one core from Taurus cluster} + \caption{The power consumption by one core from the Taurus cluster} \label{fig:power_cons} \end{figure} +The energy model and the scaling factors selection algorithm were applied to the NAS parallel benchmarks v3.3 \cite{NAS.Parallel.Benchmarks} and evaluated over grid'5000. +The benchmark suite contains seven applications: CG, MG, EP, LU, BT, SP and FT. These applications have different computations and communications ratios and strategies which make them good testbed applications to evaluate the proposed algorithm and energy model. +The benchmarks have seven different classes, S, W, A, B, C, D and E, that represent the size of the problem that the method solves. In this work, the class D was used for all benchmarks in all the experiments presented in the next sections. + \begin{table}[!t] @@ -672,22 +883,21 @@ The benchmarks have seven different classes, S, W, A, B, C, D and E, that repres \subsection{The experimental results of the scaling algorithm} \label{sec.res} -In this section, the results of the the application of the scaling factors selection algorithm \ref{HSA} +In this section, the results of the application of the scaling factors selection algorithm \ref{HSA} to the NAS parallel benchmarks are presented. As mentioned previously, the experiments -were conducted over two sites of grid'5000, Lyon and Nancy sites. +were conducted over two sites of grid'5000, Lyon and Nancy sites. Two scenarios were considered while selecting the clusters from these two sites : \begin{itemize} \item In the first scenario, nodes from two sites and three heterogeneous clusters were selected. The two sites are connected -are connected via a long distance network. -\item In the second scenario nodes from three clusters that are -located in one site, Nancy site. + via a long distance network. +\item In the second scenario nodes from three clusters that are located in one site, Nancy site. \end{itemize} The main reason behind using these two scenarios is to evaluate the influence of long distance communications (higher latency) on the performance of the -scaling factors selection algorithm. Indeed, in the first scenario the computations to communications ratio +scaling factors selection algorithm. Indeed, in the first scenario the computations to communications ratio is very low due to the higher communication times which reduces the effect of DVFS operations. The NAS parallel benchmarks are executed over @@ -701,7 +911,7 @@ Table \ref{tab:sc} shows the number of nodes used from each cluster for each sce \centering \begin{tabular}{|*{4}{c|}} \hline -\multirow{2}{*}{Scenario name} & \multicolumn{2}{c|} {The participating clusters} \\ \cline{2-4} +\multirow{2}{*}{Scenario name} & \multicolumn{3}{c|} {The participating clusters} \\ \cline{2-4} & Cluster & Site & No. of nodes \\ \hline \multirow{3}{*}{Two sites / 16 nodes} & Taurus & Lyon & 5 \\ \cline{2-4} @@ -717,28 +927,15 @@ Table \ref{tab:sc} shows the number of nodes used from each cluster for each sce & Griffon & Nancy & 6 \\ \hline \multirow{3}{*}{One site / 32 nodes} & Graphite & Nancy & 4 \\ \cline{2-4} - & Graphene & Nancy & 12 \\ \cline{2-4} - & Griffon & Nancy & 12 \\ + & Graphene & Nancy & 14 \\ \cline{2-4} + & Griffon & Nancy & 14 \\ \hline \end{tabular} \label{tab:sc} \end{table} -\begin{figure} - \centering - \includegraphics[scale=0.5]{fig/eng_con_scenarios.eps} - \caption{The energy consumptions of NAS benchmarks over different scenarios } - \label{fig:eng_sen} -\end{figure} - -\begin{figure} - \centering - \includegraphics[scale=0.5]{fig/time_scenarios.eps} - \caption{The execution times of NAS benchmarks over different scenarios } - \label{fig:time_sen} -\end{figure} The NAS parallel benchmarks are executed over these two platforms with different number of nodes, as in Table \ref{tab:sc}. @@ -754,36 +951,16 @@ presented in the plots \ref{fig:eng_sen} and \ref{fig:time_sen} respectively. For the majority of the benchmarks, the energy consumed while executing the NAS benchmarks over one site scenario for 16 and 32 nodes is lower than the energy consumed while using two sites. -The long distance communications between the two distributed sites increase the idle time which leads to more static energy consumption. - The execution times of these benchmarks +The long distance communications between the two distributed sites increase the idle time, which leads to more static energy consumption. + +The execution times of these benchmarks over one site with 16 and 32 nodes are also lower when compared to those of the two sites -scenario. +scenario. Moreover, most of the benchmarks running over the one site scenario their execution times are approximately divided by two when the number of computing nodes is doubled from 16 to 32 nodes (linear speed up according to the number of the nodes). However, the execution times and the energy consumptions of EP and MG benchmarks, which have no or small communications, are not significantly affected in both scenarios. Even when the number of nodes is doubled. On the other hand, the communications of the rest of the benchmarks increases when using long distance communications between two sites or increasing the number of computing nodes. -\begin{figure} - \centering - \includegraphics[scale=0.5]{fig/eng_s.eps} - \caption{The energy saving of NAS benchmarks over different scenarios } - \label{fig:eng_s} -\end{figure} - - -\begin{figure} - \centering - \includegraphics[scale=0.5]{fig/per_d.eps} - \caption{The performance degradation of NAS benchmarks over different scenarios } - \label{fig:per_d} -\end{figure} - -\begin{figure} - \centering - \includegraphics[scale=0.5]{fig/dist.eps} - \caption{The tradeoff distance of NAS benchmarks over different scenarios } - \label{fig:dist} -\end{figure} The energy saving percentage is computed as the ratio between the reduced energy consumption, equation (\ref{eq:energy}), and the original energy consumption, @@ -791,13 +968,24 @@ equation (\ref{eq:eorginal}), for all benchmarks as in figure \ref{fig:eng_s}. This figure shows that the energy saving percentages of one site scenario for 16 and 32 nodes are bigger than those of the two sites scenario which is due to the higher computations to communications ratio in the first scenario -than in the second one. Moreover, the frequency selecting algorithm selects smaller frequencies when the computations times are higher than the communication times which +than in the second one. Moreover, the frequency selecting algorithm selects smaller frequencies when the computations times are bigger than the communication times which results in a lower energy consumption. Indeed, the dynamic consumed power is exponentially related to the CPU's frequency value. On the other side, the increase in the number of computing nodes can increase the communication times and thus produces less energy saving depending on the benchmarks being executed. The results of the benchmarks CG, MG, BT and FT show more -energy saving percentage in one site scenario when executed over 16 nodes comparing to 32 nodes. While, LU and SP consume more energy with 16 nodes than 32 in one site because there computations to -communications ratio is not affected by the increase of the number of local communications. +energy saving percentage in one site scenario when executed over 16 nodes comparing to 32 nodes. While, LU and SP consume more energy with 16 nodes than 32 in one site because their computations to communications ratio is not affected by the increase of the number of local communications. +\begin{figure} + \centering + \subfloat[The energy consumption by the nodes wile executing the NAS benchmarks over different scenarios + ]{% + \includegraphics[width=.4\textwidth]{fig/eng_con_scenarios.eps}\label{fig:eng_sen}} \hspace{1cm}% + \subfloat[The execution times of the NAS benchmarks over different scenarios]{% + \includegraphics[width=.4\textwidth]{fig/time_scenarios.eps}\label{fig:time_sen}} + \label{fig:exp-time-energy} + \caption{The energy consumption and execution time of NAS Benchmarks over different scenarios} +\end{figure} + + The energy saving percentage is reduced for all the benchmarks because of the long distance communications in the two sites @@ -805,238 +993,278 @@ scenario, except for the EP benchmark which has no communications. Therefore, dependent on the maximum difference between the computing powers of the heterogeneous computing nodes, for example in the one site scenario, the graphite cluster is selected but in the two sits scenario this cluster is replaced with Taurus cluster which is more powerful. -Therefore, the energy saving of EP benchmarks are bigger in the two site scenario due +Therefore, the energy saving of EP benchmarks are bigger in the two sites scenario due to the higher maximum difference between the computing powers of the nodes. -In fact, high -differences between the nodes' computing powers make the proposed frequencies selecting + +In fact, high differences between the nodes' computing powers make the proposed frequencies selecting algorithm select smaller frequencies for the powerful nodes which produces less energy consumption and thus more energy saving. -The best energy saving percentage was obtained in the one site scenario with 16 nodes, The energy consumption was on average reduced up to 30\%. +The best energy saving percentage was obtained in the one site scenario with 16 nodes, the energy consumption was on average reduced up to 30\%. +\begin{figure} + \centering + \subfloat[The energy reduction while executing the NAS benchmarks over different scenarios ]{% + \includegraphics[width=.4\textwidth]{fig/eng_s.eps}\label{fig:eng_s}} \hspace{2cm}% + \subfloat[The performance degradation of the NAS benchmarks over different scenarios]{% + \includegraphics[width=.4\textwidth]{fig/per_d.eps}\label{fig:per_d}}\hspace{2cm}% + \subfloat[The tradeoff distance between the energy reduction and the performance of the NAS benchmarks + over different scenarios]{% + \includegraphics[width=.4\textwidth]{fig/dist.eps}\label{fig:dist}} + \label{fig:exp-res} + \caption{The experimental results of different scenarios} +\end{figure} +Figure \ref{fig:per_d} presents the performance degradation percentages for all benchmarks over the two scenarios. +The performance degradation percentage for the benchmarks running on two sites with +16 or 32 nodes is on average equal to 8.3\% or 4.7\% respectively. +For this scenario, the proposed scaling algorithm selects smaller frequencies for the executions with 32 nodes without significantly degrading their performance because the communication times are higher with 32 nodes which results in smaller computations to communications ratio. On the other hand, the performance degradation percentage for the benchmarks running on one site with +16 or 32 nodes is on average equal to 3.2\% or 10.6\% respectively. In opposition to the two sites scenario, when the number of computing nodes is increased in the one site scenario, the performance degradation percentage is increased. Therefore, doubling the number of computing +nodes when the communications occur in high speed network does not decrease the computations to +communication ratio. -Figure \ref{fig:per_d} presents the performance degradation percentages for all benchmarks. -The performance degradation percentage for the benchmarks running on one site with -16 or 32 nodes is on average equal to 3\% or 10\% respectively. +The performance degradation percentage of the EP benchmark after applying the scaling factors selection algorithm is the highest in comparison to +the other benchmarks. Indeed, in the EP benchmark, there are no communication and slack times and its +performance degradation percentage only depends on the frequencies values selected by the algorithm for the computing nodes. +The rest of the benchmarks showed different performance degradation percentages, which decrease +when the communication times increase and vice versa. - \textcolor{red}{please correct the following paragraph because I do not understand it at all! Stop using we, this because, effected, while, ...} - - - - This because selecting smaller frequencies in the one site scenarios, -when the computations grater than the communications , increase the number of the critical nodes -when the number of nodes increased. The inverse happens in the tow sites scenario, -this due to the lower computations to communications ratio that decreased with highest -communications. Therefore, the number of the critical nodes are decreased. The average performance -degradation for the two sites scenario with 16 nodes is equal to 8\% and for 32 nodes is equal to 4\%. -The EP benchmarks is gives the bigger performance degradation ratio, because there is no -communications and no slack times in this benchmarks that is always their performance effected -by selecting big or small frequencies. -The tradeoff between these scenarios can be computed as in the trade-off function \ref{eq:max}. -Figure \ref{fig:dist}, presents the tradeoff distance for all benchmarks over all -platform scenarios. The one site scenario with 16 and 32 nodes had the best tradeoff distance -compared to the two sites scenarios, because the increase in the communications as mentioned before. -The one site scenario with 16 nodes is the best scenario in term of energy and performance tradeoff, -which on average is up 26\%. Then, the tradeoff distance is related linearly to the energy saving -percentage. Finally, the best energy and performance tradeoff depends on the increase in all of: -1) the computations to communications ratio, 2) the differences in computing powers -between the computing nodes and 3) the differences in static and the dynamic powers of the nodes. - -\subsection{The experimental results of multicores clusters} -\label{sec.res-mc} -The grid'5000 clusters have different number of cores embedded in their nodes -as in the Table \ref{table:grid5000}. Moreover, the cores of each node are -connected via shared memory model, the data transfer between cores' local -memories achieved via the global memory \cite{rauber_book}. Therefore, in -this section the proposed scaling algorithm is implemented over the grid'5000 -clusters which are included multicores in the selected nodes as same as the -two previous platform scenarios that mentioned in the section \ref{sec.res}. -The two platform scenarios, the two sites and one site scenarios, with 32 -nodes are reconfigured to used multicores for each node. For example if -the participating number of nodes from a certain cluster is equal to 12 nodes, -in the multicores scenario the selected nodes is equal to 3 nodes with using -4 cores for each of them to produced 12 cores. These scenarios with one -core and multicores are demonstrated in Table \ref{table:sen-mc}. -The energy consumptions and execution times of running the NAS parallel -benchmarks, class D, over these four different scenarios are represented -in the figures \ref{fig:eng-cons-mc} and \ref{fig:time-mc} respectively. -The execution times of NAS benchmarks over the one site multicores scenario -is higher than the execution time of those running over one site multicores scenario. -This because in the one site multicores scenario the communication is increased significantly, -and all node's cores share the same node network link which increased -the communication times. While, the execution times of the NAS benchmarks over -the two site multicores scenario is less than those executed over the two -sites one core scenario. This because using multicores decrease the communications, -while the cores shared same nodes' link but the communications between the cores -are less than the communication times between the nodes over the long distance -networks, and thus the over all execution time decreased. Generally, executing -the NAS benchmarks over the one site one core gives smaller execution times -comparing to other scenarios. This because each node in this scenario has it's -dedicated network link that used independently by one core, while in the other -scenarios the communication times are higher when using long distance communication -link or using the shared link communications between cores of each node. -On the other hand, the energy consumptions of the NAS benchmarks over the -one site one cores is less than the one site multicores scenario because -this scenario had less execution time as mentioned before. Also, in the -one site one core scenario the computations to communications ratio is -higher, then the new scaled frequencies are decreased the dynamic energy -consumption, because the dynamic power consumption are decreased exponentially -with the new frequency scaling factors. These experiments also showed, the energy -consumption and the execution times of EP and MG benchmarks over these four -scenarios are not change a lot, because there are no or small communications - which are increase or decrease the static power consumptions. -The other benchmarks were showed that their energy consumptions and execution times -are changed according to the decreasing or increasing in the communication -times that are different from scenario to other or due to the amount of -communications in each of them. - -The energy saving percentages of all NAS benchmarks, as in figure -\ref{fig:eng-s-mc}, running over these four scenarios are presented. The figure -showed the energy saving percentages of NAS benchmarks over two sites multicores scenario is higher -than two sites once core scenario, this because the the computation -times in the two sites multicores scenario is higher than the computation times -of the two sites one core scenario, then the more reduction in the -dynamic energy can be obtained as mentioned previously. In contrast, in the one site one -core and one site multicores scenarios the energy saving percentages -are approximately equivalent, on average they are up to 25\%. This -because in the both scenarios there are a small difference in the -computations to communications ratio, leading the proposed scaling algorithm -to selects the frequencies proportionally to these ratios and keeping -as much as possible the energy saving percentages the same. The -performance degradation percentages of NAS benchmarks are presented in -figure \ref{fig:per-d-mc}. This figure indicates that performance -degradation percentages of running NAS benchmarks over two sites -multocores, on average is equal to 7\%, gives more performance degradation percentage -than two sites one core scenario, which on average is equal to 4\%. -This because when using the two sites multicores scenario increased -the computations to communications ratio, which may be increased the effect -on the overall execution time when the proposed scaling algorithm is applied and scaling down the frequencies. -The inverse was happened when the benchmarks are executed over one -site one core scenario their performance degradation percentages, on average -is equal to 10\%, are higher than those executed over one sit one core, -which on average is equal to 7\%. This because in one site -multicores scenario the computations to communications ratio is decreased -as mentioned before, thus selecting new frequencies are less effect -on the overall execution time. The tradeoff distances of all NAS -benchmarks over all scenarios are presented in the figure \ref{fig:dist-mc}. -These tradeoff distances are used to verified which scenario is the best in term of -energy and performance ratio. The one sites multicores scenario is the best scenario in term of -energy and performance tradeoff, on average is equal to 17.6\%, when comparing to the one site one core -scenario, one average is equal to 15.3\%. This because the one site multicores scenario -has the same energy saving percentages of the one site one core scenario but -with less performance degradation. The two sites multicores scenario is gives better -energy and performance tradeoff, one average is equal to 14.7\%, than the two sites -one core, on average is equal to 13.3\%. -Finally, using multicore in both scenarios increased the energy and performance tradeoff -distance. This is because using multicores are increased the computations to communications -ratio in two sites scenario and thus the energy saving increased over the performance degradation, whereas decreased this ratio -in one site scenario causing the performance degradation decreased over the energy saving. +Figure \ref{fig:dist} presents the distance percentage between the energy saving and the performance degradation for each benchmark over both scenarios. The tradeoff distance percentage can be +computed as in equation \ref{eq:max}. The one site scenario with 16 nodes gives the best energy and performance +tradeoff, on average it is equal to 26.8\%. The one site scenario using both 16 and 32 nodes had better energy and performance +tradeoff comparing to the two sites scenario because the former has high speed local communications +which increase the computations to communications ratio and the latter uses long distance communications which decrease this ratio. + + Finally, the best energy and performance tradeoff depends on all of the following: +1) the computations to communications ratio when there are communications and slack times, 2) the heterogeneity of the computing powers of the nodes and 3) the heterogeneity of the consumed static and dynamic powers of the nodes. +\subsection{The experimental results over multi-cores clusters} +\label{sec.res-mc} + +The clusters of grid'5000 have different number of cores embedded in their nodes +as shown in Table \ref{table:grid5000}. In +this section, the proposed scaling algorithm is evaluated over the grid'5000 platform while using multi-cores nodes selected according to the one site scenario described in the section \ref{sec.res}. +The one site scenario uses 32 cores from multi-cores nodes instead of 32 distinct nodes. For example if +the participating number of cores from a certain cluster is equal to 14, +in the multi-core scenario the selected nodes is equal to 4 nodes while using +3 or 4 cores from each node. The platforms with one +core per node and multi-cores nodes are shown in Table \ref{table:sen-mc}. +The energy consumptions and execution times of running the class D of the NAS parallel +benchmarks over these four different scenarios are presented +in the figures \ref{fig:eng-cons-mc} and \ref{fig:time-mc} respectively. \begin{table}[] \centering \caption{The multicores scenarios} - \begin{tabular}{|*{4}{c|}} \hline Scenario name & Cluster name & \begin{tabular}[c]{@{}c@{}}No. of nodes\\ in each cluster\end{tabular} & \begin{tabular}[c]{@{}c@{}}No. of cores\\ for each node\end{tabular} \\ \hline -\multirow{3}{*}{Two sites/ one core} & Taurus & 10 & 1 \\ \cline{2-4} - & Graphene & 10 & 1 \\ \cline{2-4} - & Griffon & 12 & 1 \\ \hline -\multirow{3}{*}{Two sites/ multicores} & Taurus & 3 & 3 or 4 \\ \cline{2-4} - & Graphene & 3 & 3 or 4 \\ \cline{2-4} - & Griffon & 3 & 4 \\ \hline -\multirow{3}{*}{One site/ one core} & Graphite & 4 & 1 \\ \cline{2-4} - & Graphene & 12 & 1 \\ \cline{2-4} - & Griffon & 12 & 1 \\ \hline -\multirow{3}{*}{One site/ multicores} & Graphite & 3 & 3 or 4 \\ \cline{2-4} - & Graphene & 3 & 3 or 4 \\ \cline{2-4} - & Griffon & 3 & 4 \\ \hline +\multirow{3}{*}{One core per node} & Graphite & 4 & 1 \\ \cline{2-4} + & Graphene & 14 & 1 \\ \cline{2-4} + & Griffon & 14 & 1 \\ \hline +\multirow{3}{*}{Multi-cores per node} & Graphite & 1 & 4 \\ \cline{2-4} + & Graphene & 4 & 3 or 4 \\ \cline{2-4} + & Griffon & 4 & 3 or 4 \\ \hline \end{tabular} \label{table:sen-mc} \end{table} + \begin{figure} \centering - \includegraphics[scale=0.5]{fig/eng_con.eps} - \caption{Comparing the energy consumptions of running NAS benchmarks over one core and multicores scenarios } - \label{fig:eng-cons-mc} + \subfloat[Comparing the execution times of running NAS benchmarks over one core and multicores scenarios]{% + \includegraphics[width=.4\textwidth]{fig/time.eps}\label{fig:time-mc}} \hspace{1cm}% + \subfloat[Comparing the energy consumptions of running NAS benchmarks over one core and multi-cores scenarios]{% + \includegraphics[width=.4\textwidth]{fig/eng_con.eps}\label{fig:eng-cons-mc}} + \label{fig:eng-cons} + \caption{The energy consumptions and execution times of NAS benchmarks over one core and multi-cores per node architectures} \end{figure} - \begin{figure} - \centering - \includegraphics[scale=0.5]{fig/time.eps} - \caption{Comparing the execution times of running NAS benchmarks over one core and multicores scenarios } - \label{fig:time-mc} -\end{figure} - \begin{figure} +The execution times for most of the NAS benchmarks are higher over the multi-cores per node scenario +than over single core per node scenario. Indeed, + the communication times are higher in the one site multi-cores scenario than in the latter scenario because all the cores of a node share the same node network link which can be saturated when running communication bound applications. Moreover, the cores of a node share the memory bus which can be also saturated and become a bottleneck. +Moreover, the energy consumptions of the NAS benchmarks are lower over the + one core scenario than over the multi-cores scenario because +the first scenario had less execution time than the latter which results in less static energy being consumed. +The computations to communications ratios of the NAS benchmarks are higher over +the one site one core scenario when compared to the ratio of the multi-cores scenario. +More energy reduction can be gained when this ratio is big because it pushes the proposed scaling algorithm to select smaller frequencies that decrease the dynamic power consumption. These experiments also showed that the energy +consumption and the execution times of the EP and MG benchmarks do not change significantly over these two +scenarios because there are no or small communications. Contrary to EP and MG, the energy consumptions and the execution times of the rest of the benchmarks vary according to the communication times that are different from one scenario to the other. + + +The energy saving percentages of all NAS benchmarks running over these two scenarios are presented in the figure \ref{fig:eng-s-mc}. +The figure shows that the energy saving percentages in the one +core and the multi-cores scenarios +are approximately equivalent, on average they are equal to 25.9\% and 25.1\% respectively. +The energy consumption is reduced at the same rate in the two scenarios when compared to the energy consumption of the executions without DVFS. + + +The performance degradation percentages of the NAS benchmarks are presented in +figure \ref{fig:per-d-mc}. It shows that the performance degradation percentages is higher for the NAS benchmarks over the one core per node scenario (on average equal to 10.6\%) than over the multi-cores scenario (on average equal to 7.5\%). The performance degradation percentages over the multi-cores scenario is lower because the computations to communications ratio is smaller than the ratio of the other scenario. + +The tradeoff distance percentages of the NAS benchmarks over the two scenarios are presented +in the figure \ref{fig:dist-mc}. These tradeoff distance between energy consumption reduction and performance are used to verify which scenario is the best in both terms at the same time. The figure shows that the tradeoff distance percentages are on average bigger over the multi-cores scenario (17.6\%) than over the one core per node scenario (15.3\%). + + + +\begin{figure} \centering - \includegraphics[scale=0.5]{fig/eng_s_mc.eps} - \caption{The energy saving of running NAS benchmarks over one core and multicores scenarios } - \label{fig:eng-s-mc} + \subfloat[The energy saving of running NAS benchmarks over one core and multicores scenarios]{% + \includegraphics[width=.4\textwidth]{fig/eng_s_mc.eps}\label{fig:eng-s-mc}} \hspace{2cm}% + \subfloat[The performance degradation of running NAS benchmarks over one core and multicores scenarios + ]{% + \includegraphics[width=.4\textwidth]{fig/per_d_mc.eps}\label{fig:per-d-mc}}\hspace{2cm}% + \subfloat[The tradeoff distance of running NAS benchmarks over one core and multicores scenarios]{% + \includegraphics[width=.4\textwidth]{fig/dist_mc.eps}\label{fig:dist-mc}} + \label{fig:exp-res} + \caption{The experimental results of one core and multi-cores scenarios} \end{figure} + + +\subsection{Experiments with different static and dynamic powers consumption scenarios} +\label{sec.pow_sen} + +In section \ref{sec.grid5000}, since it was not possible to measure the static power consumed by a CPU, the static power was assumed to be equal to 20\% of the measured dynamic power. This power is consumed during the whole execution time, during computation and communication times. Therefore, when the DVFS operations are applied by the scaling algorithm and the CPUs' frequencies lowered, the execution time might increase and consequently the consumed static energy will be increased too. + +The aim of this section is to evaluate the scaling algorithm while assuming different values of static powers. +In addition to the previously used percentage of static power, two new static power ratios, 10\% and 30\% of the measured dynamic power of the core, are used in this section. +The experiments have been executed with these two new static power scenarios over the one site one core per node scenario. +In these experiments, the class D of the NAS parallel benchmarks are executed over Nancy's site. 16 computing nodes from the three clusters, Graphite, Graphene and Griffon, where used in this experiment. + + \begin{figure} \centering - \includegraphics[scale=0.5]{fig/per_d_mc.eps} - \caption{The performance degradation of running NAS benchmarks over one core and multicores scenarios } - \label{fig:per-d-mc} + \subfloat[The energy saving percentages for the nodes executing the NAS benchmarks over the three power scenarios]{% + \includegraphics[width=.4\textwidth]{fig/eng_pow.eps}\label{fig:eng-pow}} \hspace{2cm}% + \subfloat[The performance degradation percentages for the NAS benchmarks over the three power scenarios]{% + \includegraphics[width=.4\textwidth]{fig/per_pow.eps}\label{fig:per-pow}}\hspace{2cm}% + \subfloat[The tradeoff distance between the energy reduction and the performance of the NAS benchmarks over the three power scenarios]{% + + \includegraphics[width=.4\textwidth]{fig/dist_pow.eps}\label{fig:dist-pow}} + \label{fig:exp-pow} + \caption{The experimental results of different static power scenarios} \end{figure} + + \begin{figure} \centering - \includegraphics[scale=0.5]{fig/dist_mc.eps} - \caption{The tradeoff distance of running NAS benchmarks over one core and multicores scenarios } - \label{fig:dist-mc} + \includegraphics[scale=0.5]{fig/three_scenarios.pdf} + \caption{Comparing the selected frequency scaling factors for the MG benchmark over the three static power scenarios} + \label{fig:fre-pow} \end{figure} -\subsection{The results for different power consumption scenarios} -\label{sec.compare} +The energy saving percentages of the NAS benchmarks with the three static power scenarios are presented +in figure \ref{fig:eng_sen}. This figure shows that the 10\% of static power scenario +gives the biggest energy saving percentages in comparison to the 20\% and 30\% static power +scenarios. The small value of the static power consumption makes the proposed +scaling algorithm select smaller frequencies for the CPUs. +These smaller frequencies reduce the dynamic energy consumption more than increasing the consumed static energy which gives less overall energy consumption. +The energy saving percentages of the 30\% static power scenario is the smallest between the other scenarios, because the scaling algorithm selects bigger frequencies for the CPUs which increases the energy consumption. Figure \ref{fig:fre-pow} demonstrates that the proposed scaling algorithm selects the best frequency scaling factors according to the static power consumption ratio being used. +The performance degradation percentages are presented in the figure \ref{fig:per-pow}. +The 30\% static power scenario had less performance degradation percentage because the scaling algorithm +had selected big frequencies for the CPUs. While, +the inverse happens in the 10\% and 20\% scenarios because the scaling algorithm had selected CPUs' frequencies smaller than those of the 30\% scenario. The tradeoff distance percentage for the NAS benchmarks with these three static power scenarios +are presented in the figure \ref{fig:dist}. +It shows that the best tradeoff +distance percentage is obtained with the 10\% static power scenario and this percentage +is decreased for the other two scenarios because the scaling algorithm had selected different frequencies according to the static power values. +In the EP benchmark, the energy saving, performance degradation and tradeoff +distance percentages for the these static power scenarios are not significantly different because there is no communication in this benchmark. Therefore, the static power is only consumed during computation and the proposed scaling algorithm selects similar frequencies for the three scenarios. On the other hand, for the rest of the benchmarks, the scaling algorithm selects the values of the frequencies according to the communication times of each benchmark because the static energy consumption increases proportionally to the communication times. -\subsection{The comparison of the proposed scaling algorithm } + +\subsection{The comparison of the proposed frequencies selecting algorithm } \label{sec.compare_EDP} +Finding the frequencies that gives the best tradeoff between the energy consumption and the performance for a parallel +application is not a trivial task. Many algorithms have been proposed to tackle this problem. +In this section, the proposed frequencies selecting algorithm is compared to a method that uses the well known energy and delay product objective function, $EDP=energy \times delay$, that has been used by many researchers \cite{EDP_for_multi_processors,Energy_aware_application_scheduling,Exploring_Energy_Performance_TradeOffs}. +This objective function was also used by Spiliopoulos et al. algorithm \cite{Spiliopoulos_Green.governors.Adaptive.DVFS} where they select the frequencies that minimize the EDP product and apply them with DVFS operations to the multi-cores +architecture. Their online algorithm predicts the energy consumption and execution time of a processor before using the EDP method. + +To fairly compare the proposed frequencies scaling algorithm to Spiliopoulos et al. algorithm, called Maxdist and EDP respectively, both algorithms use the same energy model, equation \ref{eq:energy} and +execution time model, equation \ref{eq:perf}, to predict the energy consumption and the execution time for each computing node. +Moreover, both algorithms start the search space from the upper bound computed as in equation \ref{eq:Fint}. +Finally, the resulting EDP algorithm is an exhaustive search algorithm that tests all the possible frequencies, starting from the initial frequencies (upper bound), +and selects the vector of frequencies that minimize the EDP product. + +Both algorithms were applied to the class D of the NAS benchmarks over 16 nodes. +The participating computing nodes are distributed according to the two scenarios described in section \ref{sec.res}. +The experimental results, the energy saving, performance degradation and tradeoff distance percentages, are +presented in the figures \ref{fig:edp-eng}, \ref{fig:edp-perf} and \ref{fig:edp-dist} respectively. + + +\begin{figure} + \centering + \subfloat[The energy reduction induced by the Maxdist method and the EDP method]{% + \includegraphics[width=.4\textwidth]{fig/edp_eng}\label{fig:edp-eng}} \hspace{2cm}% + \subfloat[The performance degradation induced by the Maxdist method and the EDP method]{% + \includegraphics[width=.4\textwidth]{fig/edp_per}\label{fig:edp-perf}}\hspace{2cm}% + \subfloat[The tradeoff distance between the energy consumption reduction and the performance for the Maxdist method and the EDP method]{% + \includegraphics[width=.4\textwidth]{fig/edp_dist}\label{fig:edp-dist}} + \label{fig:edp-comparison} + \caption{The comparison results} +\end{figure} + +As shown in these figures, the proposed frequencies selection algorithm, Maxdist, outperforms the EDP algorithm in terms of energy consumption reduction and performance for all of the benchmarks executed over the two scenarios. +The proposed algorithm gives better results than EDP because it +maximizes the energy saving and the performance at the same time. +Moreover, the proposed scaling algorithm gives the same weight for these two metrics. +Whereas, the EDP algorithm gives sometimes negative tradeoff values for some benchmarks in the two sites scenarios. +These negative tradeoff values mean that the performance degradation percentage is higher than energy saving percentage. +The high positive values of the tradeoff distance percentage mean that the energy saving percentage is much higher than the performance degradation percentage. +The time complexity of both Maxdist and EDP algorithms are $O(N \cdot M \cdot F)$ and +$O(N \cdot M \cdot F^2)$ respectively, where $N$ is the number of the clusters, $M$ is the number of nodes and $F$ is the +maximum number of available frequencies. When Maxdist is applied to a benchmark that is being executed over 32 nodes distributed between Nancy and Lyon sites, it takes on average $0.01 ms$ to compute the best frequencies while EDP is on average ten times slower over the same architecture. \section{Conclusion} \label{sec.concl} +This paper has presented a new online frequencies selection algorithm. + The algorithm selects the best vector of +frequencies that maximizes the tradeoff distance +between the predicted energy consumption and the predicted execution time of the distributed +iterative applications running over a heterogeneous grid. A new energy model +is used by the proposed algorithm to predict the energy consumption +of the distributed iterative message passing application running over a grid architecture. +To evaluate the proposed method on a real heterogeneous grid platform, it was applied on the + NAS parallel benchmarks and the class D instance was executed over the grid'5000 testbed platform. + The experimental results showed that the algorithm reduces on average 30\% of the energy consumption +for all the NAS benchmarks while only degrading by 3.2\% on average the performance. +The Maxdist algorithm was also evaluated in different scenarios that vary in the distribution of the computing nodes between different clusters' sites or use multi-cores per node architecture or consume different static power values. The algorithm selects different vector of frequencies according to the +computations and communication times ratios, and the values of the static and measured dynamic powers of the CPUs. +Finally, the proposed algorithm was compared to another method that uses +the well known energy and delay product as an objective function. The comparison results showed +that the proposed algorithm outperforms the latter by selecting a vector of frequencies that gives a better tradeoff between energy consumption reduction and performance. + +In the near future, we would like to develop a similar method that is adapted to +asynchronous iterative applications where iterations are not synchronized and communications are overlapped with computations. + The development of +such a method might require a new energy model because the +number of iterations is not known in advance and depends on +the global convergence of the iterative system. \section*{Acknowledgment} This work has been partially supported by the Labex ACTION project (contract -``ANR-11-LABX-01-01''). Computations have been performed on the supercomputer -facilities of the Mésocentre de calcul de Franche-Comté. As a PhD student, +``ANR-11-LABX-01-01''). Computations have been performed on the Grid'5000 platform. As a PhD student, Mr. Ahmed Fanfakh, would like to thank the University of Babylon (Iraq) for supporting his work. -% trigger a \newpage just before the given reference -% number - used to balance the columns on the last page -% adjust value as needed - may need to be readjusted if -% the document is modified later -%\IEEEtriggeratref{15} +\section*{References} +\bibliography{my_reference} -\bibliographystyle{IEEEtran} -\bibliography{IEEEabrv,my_reference} \end{document} -%%% Local Variables: -%%% mode: latex -%%% TeX-master: t -%%% fill-column: 80 -%%% ispell-local-dictionary: "american" -%%% End: - -% LocalWords: Fanfakh Charr FIXME Tianhe DVFS HPC NAS NPB SMPI Rauber's Rauber -% LocalWords: CMOS EPSA Franche Comté Tflop Rünger IUT Maréchal Juin cedex GPU -% LocalWords: de badri muslim MPI SimGrid GFlops Xeon EP BT GPUs CPUs AMD -% LocalWords: Spiliopoulos scalability +