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1.
Two results on composed functions are proven. First we give conditions on and so that the mean behaves like , if , including the examples
1$$ " align="middle" border="0"> , not an integer for . Secondly we find conditions on the real positive numbers , such that are almost periodic and we compute their mean values and spectra.  相似文献   

2.
For a positive real parameter t, real numbers , , and , we consider sums , where is the rounding error function, i.e.\ . Generalizing and improving the main result of Part I of the paper we show that there exists an absolute constant such that for all , and all . Further, we give applications concerning the circle problem with linear, polynomial, and general weight.  相似文献   

3.
For f L n (T d ) and , the modulus of smoothness
is shown to be equivalent to
where T n is the best trigonometric polynomial approximant of degree n to f in L p and is the Laplacian. The above result is shown to be incorrect for 0 < p .  相似文献   

4.
For a large real parameter t and 0 a b we consider sums where is the rounding error function, i.e. (z) = z - [z] - 1/2. We generalize Huxley's well known estimate by showing that holds uniformly in 0 a b . Fruther, we investigate an analogous question related to the divisor problem and show that the inequality , which (due to Huxley) holds uniformly in 0 a b , and which is in general not true for 1 a b t, is true uniformly in 0 a b .  相似文献   

5.
This article improves results of Hamada, Helleseth and Maekawa on minihypers in projective spaces and linear codes meeting the Griesmer bound.In [10,12],it was shown that any -minihyper, with , where , is the disjoint union of points, lines,..., -dimensional subspaces. For q large, we improve on this result by increasing the upper bound on non-square, to non-square, square, , and (4) for square, p prime, p<3, to . In the case q non-square, the conclusion is the same as written above; the minihyper is the disjoint union of subspaces. When q is square however, the minihyper is either the disjoint union of subspaces, or the disjoint union of subspaces and one subgeometry . For the coding-theoretical problem, our results classify the corresponding codes meeting the Griesmer bound.  相似文献   

6.
We study k th order systems of two rational difference equations
$ x_n = \frac{{\alpha + \sum\nolimits_{i = 1}^k {\beta _i x_{n - i} + } \sum\nolimits_{i = 1}^k {\gamma _i y_{n - i} } }} {{A + \sum\nolimits_{j = 1}^k {B_j x_{n - j} + } \sum\nolimits_{j = 1}^k {C_j y_{n - j} } }},n \in \mathbb{N}, $ x_n = \frac{{\alpha + \sum\nolimits_{i = 1}^k {\beta _i x_{n - i} + } \sum\nolimits_{i = 1}^k {\gamma _i y_{n - i} } }} {{A + \sum\nolimits_{j = 1}^k {B_j x_{n - j} + } \sum\nolimits_{j = 1}^k {C_j y_{n - j} } }},n \in \mathbb{N},   相似文献   

7.
When E is a closed set of measure zero in the dyadic group and the Walsh series satisfies
, then for some c > 0,
Consequently any control function of the a.e. convergence is not L/(log+ L)-integrable.  相似文献   

8.
For denote by a polynomial of best weighted -approximation to on of degree . In the present paper, we are dealing with the asymptotic distribution of sign changes of the error functions .  相似文献   

9.
Let fi, i = 1, ... k, be complex-valued multiplicative functions satisfying the conditions
where i C, (*)
and
, (i = 1, ..., k), with some 0 < 1. Under these conditions we prove that % MathType!MTEF!2!1!+-% feaafiart1ev1aaatCvAUfeBSjuyZL2yd9gzLbvyNv2CaerbuLwBLn% hiov2DGi1BTfMBaeXatLxBI9gBaerbd9wDYLwzYbItLDharqqtubsr% 4rNCHbGeaGqiVu0Je9sqqrpepC0xbbL8F4rqqrFfpeea0xe9Lq-Jc9% vqaqpepm0xbba9pwe9Q8fs0-yqaqpepae9pg0FirpepeKkFr0xfr-x% fr-xb9adbaqaaeGaciGaaiaabeqaamaabaabaaGcbaWaaSaaaeaaca% aIXaaabaGaeqiWdaNaaiikaiaadIhacaGGPaaaamaaqafabaGaamyq% aiaacIcacaWGWbGaey4kaSIaaGymaiaacMcacqWIQjspdaWcaaqaai% aabYgacaqGVbGaae4zaiaabccacaqGSbGaae4BaiaabEgacaqGGaGa% amiEaaqaaiaadIhaaaaaleaacaWGWbWefv3ySLgznfgDOjdaryqr1n% gBPrginfgDObcv39gaiuaacqWFMjIHcaWG4baabeqdcqGHris5aOWa% aabuaeaacaWGbbGaaiikaiaad6gacaGGPaGaey4kaSYaaSaaaeaaca% qGOaGaaeiBaiaab+gacaqGNbGaaeiiaiaabYgacaqGVbGaae4zaiaa% bccacaqGXaGaaeimaiaadIhacaGGPaWaaWbaaSqabeaadaWcaaqaai% aadogaaeaacaaIYaaaaiabgUcaRiaaigdaaaaakeaacaqGOaGaaeiB% aiaab+gacaqGNbGaaeiiaiaadIhacaGGPaWaaWbaaSqabeaadaWcaa% qaamrr1ngBPrwtHrhAXaqehuuDJXwAKbstHrhAG8KBLbacgaGae4x8% depabaGaaGOmaaaaaaaaaaqaaiaad6gacqWFMjIHcaWG4bGae8ha3J% habeqdcqGHris5aOGaai4oaaaa!863E!\[\frac{1}{{\pi (x)}}\sum\limits_{p \leqq x} {A(p + 1) \ll \frac{{{\text{log log }}x}}{x}} \sum\limits_{n \leqq x} {A(n) + \frac{{{\text{(log log 10}}x)^{\frac{c}{2} + 1} }}{{{\text{(log }}x)^{\frac{\varrho }{2}} }}} ;\] moreover, if each fi satisfies (*) with C = 0, then there is 1 > 0, such that % MathType!MTEF!2!1!+-% feaafiart1ev1aaatCvAUfeBSjuyZL2yd9gzLbvyNv2CaerbuLwBLn% hiov2DGi1BTfMBaeXatLxBI9gBaerbd9wDYLwzYbItLDharqqtubsr% 4rNCHbGeaGqiVu0Je9sqqrpepC0xbbL8F4rqqrFfpeea0xe9Lq-Jc9% vqaqpepm0xbba9pwe9Q8fs0-yqaqpepae9pg0FirpepeKkFr0xfr-x% fr-xb9adbaqaaeGaciGaaiaabeqaamaabaabaaGcbaWaaSaaaeaaca% aIXaaabaGaeqiWdaNaaiikaiaadIhacaGGPaaaamaaqafabaGaamyq% aiaacIcacaWGWbGaey4kaSIaaGymaiaacMcacqWIQjspdaWcaaqaai% aabYgacaqGVbGaae4zaiaabccacaWG2baabaGaamiEaaaaaSqaaiaa% dchatuuDJXwAK1uy0HMmaeHbfv3ySLgzG0uy0HgiuD3BaGqbaiab-z% MigkaadIhaaeqaniabggHiLdGcdaaeqbqaaiaadgeacaGGOaGaamOB% aiaacMcacqGHRaWkdaWcaaqaaiaaigdaaeaacaWG2bWaaWbaaSqabe% aatuuDJXwAK1uy0HwmaeXbfv3ySLgzG0uy0Hgip5wzaGGbaiab+f-a% XlaaigdaaaaaaOGaey4kaSYaaSaaaeaacaaIXaaabaGaaiikaiaabY% gacaqGVbGaae4zaiaabccacaWG4bGaaiykamaaCaaaleqabaGae4x8% deVaaGymaaaaaaaabaGaamOBaiab-zMigkaadIhacqWFaCpEaeqani% abggHiLdaaaa!7A93!\[\frac{1}{{\pi (x)}}\sum\limits_{p \leqq x} {A(p + 1) \ll \frac{{{\text{log }}v}}{x}} \sum\limits_{n \leqq x} {A(n) + \frac{1}{{v^{\varrho 1} }} + \frac{1}{{({\text{log }}x)^{\varrho 1} }}} \] holds, where 3 < v < logAx. As a corollary we prove some results about the mean-value of multiplicative functions.  相似文献   

10.
On a Binary Diophantine Inequality Involving Prime Numbers   总被引:1,自引:0,他引:1  
Let 1 < c < 15/14 and N a sufficiently large real number. In this paper we prove that, for all (N, 2N\ A with , the inequality has solutions in primes .  相似文献   

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