Abstract:
A standard cell library and a method of using the same may include information regarding a plurality of standard cells stored on a non-transitory computer-readable storage medium, wherein at least one of the plurality of standard cells includes a pin through which an input signal or an output signal of the at least one standard cell passes and including first and second regions perpendicular to a stack direction. When the via is disposed in the pin, the second region can provide a resistance value of the via smaller than that of the first region. The standard cell library may further include marker information corresponding to the second region.
Abstract:
A standard cell of an IC includes a cell area including a transistor configured to determine a function of the standard cell; a first dummy area and a second dummy area respectively adjacent to two sides of the cell area in a first direction; and an active area extending in the first direction across the cell area, the first dummy area, and the second dummy area. The active area includes a first active area and a second active area spaced apart from each other in a second direction perpendicular to the first direction and extend parallel to each other in the first direction. At least one of the first active area and the second active area provided in the first dummy area is biased, and at least one of the first active area and the second active area provided in the second dummy area is biased.
Abstract:
A cooking device is provided, which includes a cooking portion, a hood portion arranged on the cooking portion and provided with a suction port formed on one side thereof, and a driving portion configured to move the hood portion, wherein the hood portion is movable to any one of a first position in which the hood portion is accommodated in the cooking portion and a second position in which the hood portion projects from the cooking portion, and an angle of the hood portion is varied so as to change a direction in which the suction port is directed in the second position.
Abstract:
A standard cell of an IC includes a cell area including a transistor configured to determine a function of the standard cell; a first dummy area and a second dummy area respectively adjacent to two sides of the cell area in a first direction; and an active area extending in the first direction across the cell area, the first dummy area, and the second dummy area. The active area includes a first active area and a second active area spaced apart from each other in a second direction perpendicular to the first direction and extend parallel to each other in the first direction. At least one of the first active area and the second active area provided in the first dummy area is biased, and at least one of the first active area and the second active area provided in the second dummy area is biased.
Abstract:
An integrated circuit (IC) may include a plurality of standard cells. At least one standard cell of the plurality of standard cells may include a power rail configured to supply power to the at least one standard cell, the power rail extending in a first direction, a cell area including at least one transistor configured to determine a function of the at least one standard cell, a first dummy area and a second dummy area respectively adjacent to two sides of the cell area in the first direction, and an active area extending in the first direction across the cell area, the first dummy area, and the second dummy area. A region of the active area, which is included in the first dummy area or the second dummy area, is electrically connected to the power rail.
Abstract:
A cooking device is provided, which includes a cooking portion, a hood portion arranged on the cooking portion and provided with a suction port formed on one side thereof, and a driving portion configured to move the hood portion, wherein the hood portion is movable to any one of a first position in which the hood portion is accommodated in the cooking portion and a second position in which the hood portion projects from the cooking portion, and an angle of the hood portion is varied so as to change a direction in which the suction port is directed in the second position.
Abstract:
Methods of generating an integrated circuit layout include forming a standard cell by providing a first active area adjacent to a first cell boundary line. The first active area is spaced apart from the first cell boundary line by a first distance. A second active area is provided adjacent to a second cell boundary line. The second cell boundary line opposes the first cell boundary line. The second active area is spaced apart from the second cell boundary line by a second distance. Fins are formed on the first and second active areas. The fins extend in a first direction and parallel to one another in a second direction substantially perpendicular to the first direction. The first cell boundary line is parallel to the fins. The first distance and the second distance remain constant when a number of the fins on the first and second active areas is changed.
Abstract:
A standard cell library and a method of using the same may include information regarding a plurality of standard cells stored on a non-transitory computer-readable storage medium, wherein at least one of the plurality of standard cells includes a pin through which an input signal or an output signal of the at least one standard cell passes and including first and second regions perpendicular to a stack direction. When the via is disposed in the pin, the second region can provide a resistance value of the via smaller than that of the first region. The standard cell library may further include marker information corresponding to the second region.
Abstract:
Methods of generating an integrated circuit layout include forming a standard cell by providing a first active area adjacent to a first cell boundary line. The first active area is spaced apart from the first cell boundary line by a first distance. A second active area is provided adjacent to a second cell boundary line. The second cell boundary line opposes the first cell boundary line. The second active area is spaced apart from the second cell boundary line by a second distance. Fins are formed on the first and second active areas. The fins extend in a first direction and parallel to one another in a second direction substantially perpendicular to the first direction. The first cell boundary line is parallel to the fins. The first distance and the second distance remain constant when a number of the fins on the first and second active areas is changed.