摘要:
A method (700) and apparatus (600) are described for performing parallel decoding in connection with 2M-1 parallel ACS unit in ACS unit (110), track buffer (112) and voting unit (114) in an Ultrawide Bandwidth (UWB) receiver having a parallel trellis decoder for decoding a message sequence encoded according to a convolutional code. Outputs from the track buffer can be input to a voting unit (114) where a voting scheme can be applied and a decision rendered as to the originally transmitted message sequence.
摘要:
A method (700) and apparatus (600) are described for performing decision voting in connection with a parallel ACS unit (110) and track buffer (112) in an Ultrawide Bandwidth (UWB) receiver having a parallel DECODER for decoding a message sequence encoded according to a convolutional code. Outputs from the track buffer can be input to a voting unit (620) where a voting scheme can be applied and a decision rendered as to the originally transmitted message sequence.
摘要:
Expanded perlite products having controlled particle size distribution, methods of producing the expanded perlite products, and methods of use thereof are provided. The expanded perlite product has, for example, a low ratio of standard deviation of particle size distribution to median particle size (for example, less than 0.63) and low median particle size (for example, less than 50 microns). The expanded perlite product may be used in a variety of applications including filter applications.
摘要:
FIG. 1 is a front, top perspective view of a first embodiment of a water balloon with filling device, showing my new design; FIG. 2 is a rear, bottom perspective view thereof; FIG. 3 is a front elevation view thereof; FIG. 4 is a rear elevation view thereof; FIG. 5 is a left side elevation view thereof; FIG. 6 is a right side elevation view thereof; FIG. 7 is a top plan view thereof; FIG. 8 is a bottom plan view thereof; FIG. 9 is an enlarged view of detail “9” identified in FIG. 1; FIG. 10 is a front, top perspective view of a second embodiment of the water balloon with filling device; FIG. 11 is a rear, bottom perspective view thereof; FIG. 12 is a front view thereof; FIG. 13 is a rear view thereof; FIG. 14 is a left side view thereof; FIG. 15 is a right side view thereof; FIG. 16 is a top view thereof; FIG. 17 is a bottom view thereof; and, FIG. 18 is an enlarged view of detail “18” identified in FIG. 10. The dashed lines immediately adjacent the shaded surfaces depict the bounds of the claimed design whereas all other dashed lines in the figures illustrate portions of the water balloon with filling device that form no part of the claimed design. The dash dot dash lines in FIGS. 1, 9, 10 and 18 are for the purpose of illustrating the enlarged view indicators and form no part of the claimed design.
摘要:
The described invention provides methods for treating an inflammatory brain disease, disorder or condition and for treating a traumatic brain injury having an inflammatory component in a subject in need thereof using isolated erythropoietin (EPO)-derived oligopeptides.
摘要:
Methods of pre-methylation of foreign DNA to improve genetic transformation in cyanobacterium. Two Type II methyltransferase-encoding genes, i.e., M (sll0729) and C (slr0214), were cloned from the chromosome of Synechocystis sp. PCC 6803 (hereafter Synechocystis 6803) and expressed in E. coli that harbors the integrative plasmid pBS-SPtK or pJU105. After pre-methylation in E. coli, the integrative plasmids were extracted and used for transformation of Synechocystis 6803. The results showed that expression of slr0214 in the integrative-plasmid-harboring E. coli cells before DNA preparation resulted in orders of magnitude higher efficiency in the following integrative transformation of Synechocystis 6803.
摘要:
The disclosure relates generally to materials that comprise conductive covalent organic frameworks. The disclosure also relates to materials that are useful to store and separate gas molecules and sensors.
摘要:
A process for metalizing a ceramic surface or attaching a ceramic to a metal is provided. The process may comprise: immersing the ceramic into an aluminum or aluminum alloy melt, making the ceramic move or stay still relative to the melt to adhere the melt to the ceramic; and then removing the ceramic from the melt to unaffectedly cool the film adhered thereto. The process can attach an aluminum or aluminum alloy thin film having a thickness of several to tens of micrometers on a ceramic surface. The thin film is formed by solidification, and does not have microscopic faults such as oxide film inclusions or pores, therefore having proper physical of mechanical properties of aluminum. Ceramics or a ceramic and a metal can be brazed via the surface metalizing film, the bonding strength of their interface can over the strength of aluminum itself.