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Differential Equations on Complex Manifolds (Hardcover, 1994 ed.): Boris Sternin, Victor Shatalov Differential Equations on Complex Manifolds (Hardcover, 1994 ed.)
Boris Sternin, Victor Shatalov
R2,933 Discovery Miles 29 330 Ships in 18 - 22 working days

The present monograph is devoted to the complex theory of differential equations. Not yet a handbook, neither a simple collection of articles, the book is a first attempt to present a more or less detailed exposition of a young but promising branch of mathematics, that is, the complex theory of partial differential equations. Let us try to describe the framework of this theory. First, simple examples show that solutions of differential equations are, as a rule, ramifying analytic functions. and, hence, are not regular near points of their ramification. Second, bearing in mind these important properties of solutions, we shall try to describe the method solving our problem. Surely, one has first to consider differential equations with constant coefficients. The apparatus solving such problems is well-known in the real the ory of differential equations: this is the Fourier transformation. Un fortunately, such a transformation had not yet been constructed for complex-analytic functions and the authors had to construct by them selves. This transformation is, of course, the key notion of the whole theory."

Differential Equations on Complex Manifolds (Paperback, Softcover reprint of hardcover 1st ed. 1994): Boris Sternin, Victor... Differential Equations on Complex Manifolds (Paperback, Softcover reprint of hardcover 1st ed. 1994)
Boris Sternin, Victor Shatalov
R2,715 Discovery Miles 27 150 Ships in 18 - 22 working days

The present monograph is devoted to the complex theory of differential equations. Not yet a handbook, neither a simple collection of articles, the book is a first attempt to present a more or less detailed exposition of a young but promising branch of mathematics, that is, the complex theory of partial differential equations. Let us try to describe the framework of this theory. First, simple examples show that solutions of differential equations are, as a rule, ramifying analytic functions. and, hence, are not regular near points of their ramification. Second, bearing in mind these important properties of solutions, we shall try to describe the method solving our problem. Surely, one has first to consider differential equations with constant coefficients. The apparatus solving such problems is well-known in the real the ory of differential equations: this is the Fourier transformation. Un fortunately, such a transformation had not yet been constructed for complex-analytic functions and the authors had to construct by them selves. This transformation is, of course, the key notion of the whole theory."

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