Time-Space Constrained Codes for Phase-Change Memories
Minghai Qin, Eitan Yaakobi, and Paul H. Siegel

TL;DR
This paper investigates time-space constrained coding for phase-change memories, providing bounds and constructions to optimize heat management during memory rewriting, thereby enhancing reliability and efficiency.
Contribution
It extends previous bounds on achievable rates and generalizes constructions for various parameters of time-space constrained codes in PCM.
Findings
Established a general upper bound on code rates.
Generalized existing code constructions for specific parameter sets.
Provided methods to construct codes for all parameter values.
Abstract
Phase-change memory (PCM) is a promising non-volatile solid-state memory technology. A PCM cell stores data by using its amorphous and crystalline states. The cell changes between these two states using high temperature. However, since the cells are sensitive to high temperature, it is important, when programming cells, to balance the heat both in time and space. In this paper, we study the time-space constraint for PCM, which was originally proposed by Jiang et al. A code is called an \emph{-constrained code} if for any consecutive rewrites and for any segment of contiguous cells, the total rewrite cost of the cells over those rewrites is at most . Here, the cells are binary and the rewrite cost is defined to be the Hamming distance between the current and next memory states. First, we show a general upper bound on the achievable…
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Taxonomy
TopicsCellular Automata and Applications · Interconnection Networks and Systems · DNA and Biological Computing
