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portada FROM SOURCE CODE TO CPU: Understand Compilation, Memory, Processes, and Program Execution
Type
Physical Book
Language
English
Pages
165
Format
Paperback
ISBN13
9798174193710

FROM SOURCE CODE TO CPU: Understand Compilation, Memory, Processes, and Program Execution

Halstead, Corin (Author) · Independently published · Paperback

FROM SOURCE CODE TO CPU: Understand Compilation, Memory, Processes, and Program Execution - Halstead, Corin

New Book Imported to Taiwan
Delivery: 30 Oct - 09 Nov Shipping: 6 to 7 business days.
NT$ 764
NT$ 764

Synopsis "FROM SOURCE CODE TO CPU: Understand Compilation, Memory, Processes, and Program Execution"

What really happens after you press Run? Source code is only the beginning. Before a program can do useful work, it may be parsed and optimized, converted into object code, linked with libraries, loaded into virtual memory, initialized by a runtime, scheduled as one or more threads, and finally executed as machine instructions through CPU pipelines, caches, and memory systems. From Source Code to CPU gives programmers a connected understanding of that entire journey. Beginning with compilation, the book shows how lexers, parsers, semantic analysis, intermediate representations, optimization, code generation, calling conventions, object files, linkers, and executable formats transform human-readable code into something a machine can run. You will then move beneath the binary into processor architecture, registers, instruction pipelines, branch prediction, caches, SIMD, virtual memory, page tables, TLBs, stacks, heaps, allocators, garbage collection, processes, loaders, threads, scheduling, synchronization, system calls, files, networks, and asynchronous I/O. Practical case studies connect these concepts to real debugging and performance problems: failed program startup, unexpected memory growth, concurrency bottlenecks, dependency failures, cache-sensitive performance, latency spikes, and security boundaries. The final chapters expand the model into modern execution environments, including containers, virtual machines, WebAssembly and WASI, eBPF, GPUs and heterogeneous computing, serverless workloads, snapshots, sandboxing, memory safety, and confidential computing. Using examples drawn from C, C++, Rust, Java, .NET, JavaScript, Python, Linux, Windows, macOS, x86-64, Arm64, RISC-V, and WebAssembly, the book teaches principles that remain useful even as individual tools and platforms change. If you have ever wondered what happens between the code you write and the work the machine actually performs, this book gives you the map.

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