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    • 54. 发明授权
    • Magnetic recording medium and manufacturing method thereof
    • 磁记录介质及其制造方法
    • US07183013B2
    • 2007-02-27
    • US10764813
    • 2004-01-26
    • Tadaaki OikawaTakahiro ShimizuHiroyuki UwazumiNaoki Takizawa
    • Tadaaki OikawaTakahiro ShimizuHiroyuki UwazumiNaoki Takizawa
    • G11B5/66G11B5/70
    • G11B5/7325G11B5/65G11B5/656G11B5/8404
    • A nonmagnetic foundation layer is made to have a body-centered cubic crystal structure with a preferred crystal orientation plane being the bcc (110) plane. A nonmagnetic intermediate layer, provided between the foundation layer and a granular magnetic layer, has a hexagonal close-packed structure with the hcp (100) plane or the hcp (200) plane being the preferred orientation plane. Furthermore, the crystal lattice misfit amount between the nonmagnetic intermediate layer 3 and the granular magnetic layer is made to be not more than 10% for each of an a-axis and a c-axis. As a result, epitaxial growth of ferromagnetic crystals in the granular magnetic layer, which has an hcp structure, is promoted, and hence the crystallinity of the magnetic layer is increased, and thus it becomes possible to simultaneously realize an increase in coercivity and a reduction in noise. Depositing the layers on an unheated substrate yields reduces manufacturing costs.
    • 将非磁性基础层制成具有体心立方晶体结构,其中优选的晶体取向平面是bcc(110)面。 设置在基础层和粒状磁性层之间的非磁性中间层具有hcp(100)面或hcp(200)面为优选取向面的六方密堆积结构。 此外,非磁性中间层3和粒状磁性层之间的晶格失配量对于a轴和c轴分别为10%以下。 结果,促进了具有hcp结构的粒状磁性层中的铁磁晶体的外延生长,因此磁性层的结晶度增加,因此可以同时实现矫顽力的提高和还原 在噪音 将层沉积在未加热的基底上会降低制造成本。
    • 56. 发明授权
    • Magnetic recording medium, a method of manufacturing the same, and a magnetic storage device using the magnetic recording medium
    • 磁记录介质,其制造方法和使用该磁记录介质的磁存储装置
    • US06946166B2
    • 2005-09-20
    • US10318280
    • 2002-12-12
    • Akira IsoTakahiro ShimizuNaoki Takizawa
    • Akira IsoTakahiro ShimizuNaoki Takizawa
    • G11B5/738G11B5/73G11B5/84
    • G11B5/7325G11B5/8404
    • A magnetic recording medium according to the invention includes a nonmagnetic substrate made of a polymer resin, the nonmagnetic substrate having been treated to improve an adhesion characteristic thereof; an adhesive layer on the nonmagnetic substrate, a nonmagnetic undercoating layer on the an adhesive layer; a magnetic layer above the nonmagnetic undercoating layer; a protection layer above the magnetic layer; and a liquid lubricant layer on the protection layer. A method of manufacturing the magnetic recording medium described above includes the steps of: treating a nonmagnetic substrate to improve an adhesion characteristic thereof; forming an adhesive layer on the nonmagnetic substrate, the adhesion thereof having been improved; forming a nonmagnetic undercoating layer on the adhesive layer; forming a magnetic layer above the nonmagnetic undercoating layer; forming a protection layer above the magnetic layer; and forming a liquid lubricant layer on the protection layer. A magnetic storage device according to the invention mounts thereon the magnetic recording medium described above.
    • 根据本发明的磁记录介质包括由聚合物树脂制成的非磁性基底,非磁性基底已被处理以改善其粘合特性; 非磁性基底上的粘合剂层,粘合剂层上的非磁性底涂层; 在非磁性底涂层之上的磁性层; 磁性层上方的保护层; 以及在保护层上的液体润滑剂层。 上述磁记录介质的制造方法包括以下步骤:处理非磁性基板以提高其粘合特性; 在非磁性基材上形成粘合剂层,其附着力得到改善; 在粘合剂层上形成非磁性底涂层; 在非磁性底涂层之上形成磁性层; 在所述磁性层上形成保护层; 以及在所述保护层上形成液体润滑剂层。 根据本发明的磁存储装置安装在其上的磁记录介质上。
    • 58. 发明授权
    • Video coding apparatus and decoding apparatus
    • 视频编码装置和解码装置
    • US06333949B1
    • 2001-12-25
    • US09474133
    • 1999-12-29
    • Akira NakagawaKimihiko KazuiEishi MorimatsuTakahiro Shimizu
    • Akira NakagawaKimihiko KazuiEishi MorimatsuTakahiro Shimizu
    • H04N736
    • H04N19/59H04N19/105H04N19/117H04N19/134H04N19/139H04N19/152H04N19/159H04N19/176H04N19/196H04N19/527H04N19/61H04N19/82H04N19/86
    • Video coding apparatus and decoding apparatus capable of reproducing decoded pictures without introducing unwanted noises, even if any considerable difference in pixel values or discontinuity exists at a certain block boundary. In a video coding apparatus employing predictive techniques, a dequantizer and an inverse DCT processor reproduce a prediction error signal from quantized transform coefficients. Here, a first resolution conversion unit (or downsampling unit) might have subsampled the original prediction error signal to reduce its picture resolution. If this is the case, a second resolution conversion unit (or upsampling unit) attempts to restore the original resolution of the prediction error signal by applying an upsampling process to the reproduced prediction error signal having the reduced resolution. In this upsampling process, each new pixel value in a certain block are calculated with reference to some surrounding pixels. The upsampling process, however, will not refer to the pixels belonging to any adjacent blocks that are subject to another coding scheme which is different from the coding scheme of the present block of interest. As an alternate arrangement, the upsampling process will entirely neglect the pixels in any other blocks but will refer only to the present block, block-by-block basis, comprising the substep of (b1) performing an upsampling process of each block with the low resolution to regain the high resolution, while not referring, when calculating a pixel value in a block that is subject to one of the coding schemes, to any pixels that belong to any other block adjacent to the block of interest if the adjacent block is subject to the other coding scheme, but referring at least to the pixels belonging to the block of interest.
    • 即使在某个块边界处存在像素值或不连续性的任何相当大的差异,也能够再现解码图像而不引入不需要的噪声的视频编码装置和解码装置。 在采用预测技术的视频编码装置中,去量化器和逆DCT处理器从量化变换系数再现预测误差信号。 这里,第一分辨率转换单元(或下采样单元)可以对原始预测误差信号进行二次采样以降低其图像分辨率。 如果是这种情况,则第二分辨率转换单元(或上采样单元)尝试通过对具有降低的分辨率的再现的预测误差信号应用上采样处理来恢复预测误差信号的原始分辨率。 在该上采样处理中,参考一些周围像素计算某个块中的每个新像素值。 然而,上采样处理将不涉及属于与当前感兴趣块的编码方案不同的另一编码方案的属于任何相邻块的像素。 作为替代布置,上采样处理将完全忽略任何其他块中的像素,但将逐块地参考当前块,包括(b1)的子步骤,以低的速率执行每个块的上采样处理 分辨率重新获得高分辨率,而当计算受到编码方案之一的块中的像素值而不指向属于与感兴趣块相邻的任何其他块的任何像素时,如果相邻块为对象 至少涉及属于感兴趣块的像素。