Abstract:
A method of making imaged elements such as lithographic printing plates is achieved by imagewise exposing a positive-working imageable element using energy of less than 300 mJ/cm2 to provide exposed and non-exposed regions. The imaged element is developed using an alkaline, silicate-free solution containing a carbonate to remove predominantly only the exposed regions to provide an image. The imageable element comprises a substrate and a radiation absorbing compound, and has an imageable layer on the substrate that comprises a developability-enhancing compound and a poly(vinyl acetal) in which at least 25 mol % of its recurring units comprise pendant nitro-substituted phenolic groups.
Abstract translation:通过使用小于300mJ / cm 2的能量的正性可成像元件成像曝光以提供曝光和未曝光区域,来实现诸如平版印刷版之类的成像元件的方法。 成像元件使用含有碳酸盐的碱性无硅酸盐溶液显影,主要仅去除曝光区域以提供图像。 可成像元件包括基材和辐射吸收化合物,并且在基材上具有可显影性增强化合物和聚(乙烯醇缩醛)的可成像层,其中至少25摩尔%的重复单元包括硝基取代的侧基 酚类。
Abstract:
Positive-working imageable elements can be imaged and developed to prepare imaged elements such as lithographic printing plates. The imageable elements including an imageable layer that has one or more alkaline soluble polymeric binders and a developability-enhancing compound that is represented by Structure (DEC) or (DEC1) described herein that are organic compounds having at least one amino group and at least one carboxylic acid group in each molecule.
Abstract:
Video processing system, computer program product and method for managing an exchange of information between a memory unit and a decoder, the method includes: (a) retrieving, from the memory unit, a first non-zero data structure that comprises only non-zero first transform coefficient groups; wherein first transform coefficient groups are associated with a first quality level; (b) retrieving, from the memory unit, second layer information; (c) processing, by the video decoder, the second layer information and the first non-zero data structure to provide second transform coefficient groups; (c) generating, by the video decoder, a second non-zero data structure that comprises only non-zero second transform coefficient groups; wherein the second non-zero data structure is associated with a second quality level that is higher than the first quality level; (d) generating second non-zero indicators that are indicative of non-zero transform coefficient groups, wherein the second non-zero data structure is associated with a second quality level that is higher than the first quality level; and (e) writing to the memory unit the second non-zero indicators.
Abstract:
A positive-working, ablation-imagable lithographic printing plate precursor can be imaged and used for lithographic printing without wet processing. This precursor has a sulfuric acid or phosphoric acid anodized aluminum-containing substrate, a crosslinked hydrophilic inner layer comprising a crosslinked polymer derived by using a crosslinking agent that comprises at least two aldehyde groups, and an acidic compound. Over the crosslinked hydrophilic inner layer is an oleophilic outer layer comprising an infrared radiation absorber and an oleophilic polymer. The precursor also has a copolymer comprising randomly recurring units derived from each of a (meth)acrylamide and vinyl phosphonic acid. This copolymer is present either within the crosslinked hydrophilic inner layer, as part of a different copolymer layer between the crosslinked hydrophilic inner layer and the substrate, or in both places.
Abstract:
The invention pertains to a video processing system for video processing, the video processing system being arranged to assign tasks to least two parallel processing units capable of parallel processing of tasks. The video processing system is further arranged to control at least one storage device to store input video data to be processed, processed video data and a task list of video processing tasks. The video processing system is arranged to provide and/or process video data having a hierarchical enhancement structure comprising at least one basic layer and one or more enhancement layers dependent on the basic layer and/or at least one of the other enhancement layers. It is further arranged to assign at least one task of the task list to one of the parallel processing units; and to update, after the parallel processing unit has processed a task, the task list with information regarding tasks related to at least one enhancement layer dependent on the processed task. The invention also pertains to a corresponding method for parallel processing of video data.
Abstract:
A method for writing an image to a surface of an offset media (100) includes mounting the offset media on the imaging drum (204); imaging on a first part of the surface with high energy radiation to ablate the first part wherein the first part represent non-image data; and imaging a second part of the surface with low energy radiation to fixate image data on the second part.
Abstract:
Video processing system, computer program product and method for decoding an encoded video stream, the method includes: receiving an encoded video stream that comprises a plurality of encoded video frames, each encoded video frame comprises multiple encoded frame portions; and repeating, for each encoded frame portion: providing, to an entropy decoder, different quality level representations of the encoded frame portion and context information generated during an entropy decoding process of different quality level representations of another encoded frame portion; entropy decoding, by the entropy decoder, the different quality level representations of the frame portion based on the context information; wherein the entropy decoding comprises updating the context information; wherein the entropy decoding is selected from a group consisting of context based adaptive binary arithmetic coding (CABAC) and context based variable length coding (CBVLC); and storing the context information.
Abstract:
An imaging apparatus (10) for forming an image on an offset media (100) includes a carriage (220), which moves relative to said offset media wherein said offset media further comprises a top layer and a bottom layer. An imaging head (208) is mounted on the carriage for imaging the surface of the offset media. A power adjustment element (212) controls power intensity of the imaging head. A controller (216) provides imaging data to the imaging head wherein the power intensity level is set according to the imaging data (228). Image areas on top layer are fixated by applying low intensity power. Non-image areas are ablated from the top layer by applying high intensity power.
Abstract:
Positive-working imageable elements having improved sensitivity, high resolution, and solvent resistance are prepared using a water-insoluble polymeric binder comprising vinyl acetal recurring units that have pendant hydroxyaryl groups, and recurring units comprising carboxylic acid aryl ester groups that are substituted with a cyclic imide group. These imageable elements can be imaged and developed to provide various types of elements including lithographic printing plates.
Abstract:
Positive-working imageable elements can be imaged and processed using a processing solution that comprises at least 0.03 N of an organic amine or a mixture thereof, whose conjugated acids have a pKa greater than 9 and a boiling point greater than 150° C. The imageable element is a single-layer, infrared radiation-sensitive positive-working imageable element comprising a substrate and an infrared radiation absorbing compound. It also has an imageable layer that comprises a developability-enhancing compound and a poly(vinyl acetal) in which at least 25 mol % of its recurring units comprise pendant phenol, naphthol, or anthracenol groups that are substituted with one or more electron-withdrawing groups.