Annotated Algorithms in Python: Applications in Physics, Biology, and Finance

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Livro digital

Título:
Annotated Algorithms in Python: Applications in Physics, Biology, and Finance

Autor:
Massimo Di Pierro

Categoria:
Tecnologia > Backend

Doador:
Raffaello D. N.

Sinopse:
If many algorithm books force readers to choose between theory and practical computing, this one is appealing because its table of contents refuses that split: it opens with Python fundamentals, moves into algorithmic theory with recurrence relations, trees, graphs, greedy methods, and machine learning, and then pushes onward into numerical algorithms, probability, statistics, random numbers, and domain-facing applications. That breadth makes the first promise clear: this is an algorithmic workbook for people who want code, mathematics, and applied problem solving in the same room. The structure is unusually layered. Early chapters establish the Python language, modules, classes, and file handling before building up to order-of-growth analysis, data structures, graph algorithms, clustering, neural networks, and genetic algorithms. Later sections deepen into linear algebra, matrix inversion, optimization, integration, differential equations, probability, and distributions, which means the reader is not just learning isolated techniques but acquiring a toolkit that can move across scientific computing, quantitative modeling, and general algorithm design. That makes the book especially valuable for developers and technically ambitious students who want algorithms in context rather than as sterile exercises. Its differential is its crossover range: it connects classic CS structures with numerical methods and applied modeling, giving the reader a path from Python implementation details to the kinds of computational problems that show up in physics, biology, and finance.

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