单地址空间系统的一些问题

J. Chase, M. Feeley, H. Levy
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引用次数: 14

摘要

我们之前描述了Opal,这是一个操作系统环境,它具有对所有保护域通用的单个虚拟地址空间,而不是每个保护域(例如Unix进程)通常的私有虚拟地址空间。Opal节点上的所有线程都看到相同的虚拟地址到物理地址的映射;任何线程都可以引用任何虚拟地址,但是对数据的访问由线程的保护域决定。最新RISC处理器的大虚拟地址空间使单地址空间方法成为可能。它允许保护域通过相互同意传递和共享内存段,同时保留指针的含义。当时Opal是一个纸面设计,只有几个实现部分。从那时起,Opal的主要特性就被原型化了。虽然目前的原型运行在32位MIPS系统上,但它表明该模型既可行又有用。然而,对于我们这些长期习惯于每个进程的地址空间的人来说,单地址空间的想法在概念上和实践上仍然是一个困难的调整。在过去的一年里,我们花了很多时间讨论这种模式的好处,现在我们的目的是概述它的一些局限性和复杂性。我们的目标是将真实的问题与虚假的问题区分开来,并根据我们的经验将辩论集中在我们认为最重要的领域。
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Some issues for single address space systems
We previously described Opal, an OS environment that has a single virtual address space common to all protection domains, rather than the usual private virtual address space per protection domain (e.g., a Unix process). All threads on an Opal node see the same mapping of virtual to physical addresses; any thread can reference any virtual address, but access to the data is determined by the thread's protection domain. The single address space approach is made feasible by the large virtual address spaces of the newest RISC processors. It allows protection domains to pass and share memory segments by mutual consent, while preserving the meaning of pointers. At the time Opal was a paper design, with only a few pieces of implementation. Since that time the key features of Opal have been prototyped. While the current prototype runs on 32-bit MIPS systems, it demonstrates that the model is both workable and useful. Yet the single address space idea remains a difficult adjustment, both conceptually and practically, for those of us long accustomed to per-process address spaces. Having spent much of the past year arguing the benefits of the model, our purpose now is to outline some of its limitations and complications. The goal is to separate the real problems from the false ones, and to focus the debate on the areas that we think are most important, based on our experience.<>
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