{"id":1029807,"date":"2024-04-29T23:32:39","date_gmt":"2024-04-30T06:32:39","guid":{"rendered":"https:\/\/www.microsoft.com\/en-us\/research\/?post_type=msr-research-item&#038;p=1029807"},"modified":"2024-04-30T14:25:00","modified_gmt":"2024-04-30T21:25:00","slug":"splice-efficiently-removing-a-users-data-from-in-memory-application-state","status":"publish","type":"msr-research-item","link":"https:\/\/www.microsoft.com\/en-us\/research\/publication\/splice-efficiently-removing-a-users-data-from-in-memory-application-state\/","title":{"rendered":"Splice: Efficiently Removing a User&#8217;s Data from In-memory Application State"},"content":{"rendered":"<p>Splice is a new programming framework that allows security-conscious applications to efficiently locate and delete a user&#8217;s in-memory state. The core technical challenge is determining how to delete a user&#8217;s memory values without breaking application-specific semantic invariants involving the memory state of remaining users. Splice solves this problem using three techniques: taint tracking (which traces how a user&#8217;s data flows through memory), deletion by synthesis (which overwrites each user-owned memory value in place, replacing it with a value that preserves the symbolic constraints of enclosing data structures), and a novel type system (which forces applications to employ defensive programming to avoid computing over synthesize-deleted values in unsafe ways). Using four realistic applications that we ported to Splice, we show that Splice&#8217;s type system and defensive programming requirements are not onerous for developers. We also demonstrate that Splice&#8217;s run-time overheads are similar to those of prior taint tracking systems, while enabling strong deletion semantics.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Splice is a new programming framework that allows security-conscious applications to efficiently locate and delete a user&#8217;s in-memory state. The core technical challenge is determining how to delete a user&#8217;s memory values without breaking application-specific semantic invariants involving the memory state of remaining users. Splice solves this problem using three techniques: taint tracking (which traces 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