Stall estimation metric: An architectural metric for estimating software complexity

Amit R. Pandey
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Abstract

Software metrics can be classified in to two categories of code metrics and architectural metrics [1,2]. Code metrics basically consider analysis of data structures and algorithms for determining the complexity of the program [3,4,5]. Whereas architectural metrics consider the mechanism how system is processing data within its components and any existing dependencies between the processed data for estimating the complexity [3,6]. In any pipelined RISC processor program is executed instruction after instruction and it is also possible to have program dependencies between them [7]. These dependencies are of two types, data dependencies and control dependencies [8,9,10,11]. Data dependencies can be resolved by forwarding the data between stages of the pipelined RISC processor. Stall can be induced between the instructions while resolving some of these data dependencies. Stall can also be induced between instructions during branch prediction. The proposed architectural metric considers all those cases which will affect the overall execution of the program by causing stall together with the count of statements actually executed, for estimating the overall software complexity.
失速估计度量:估算软件复杂性的架构度量标准
软件度量可分为代码度量和架构度量两类[1,2]。代码度量主要考虑对数据结构和算法进行分析,以确定程序的复杂性 [3,4,5]。而架构指标考虑的是系统如何在其组件内处理数据的机制,以及所处理数据之间的任何现有依赖关系,以估算复杂性[3,6]。在任何流水线 RISC 处理器中,程序都是一条指令接一条指令地执行,它们之间也可能存在程序依赖关系[7]。这些依赖关系分为两类:数据依赖关系和控制依赖关系 [8,9,10,11]。数据依赖可以通过在流水线 RISC 处理器的各个阶段之间转发数据来解决。在解决其中一些数据依赖性问题时,指令之间可能会出现滞留。在分支预测过程中,指令之间也可能出现滞留。建议的架构指标考虑了所有会影响程序整体执行的停滞情况,以及实际执行的语句数,用于估算软件的整体复杂度。
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