1. A seed, plant, plant part, or cell of inbred maize variety PH1C3S, representative seed of said variety having been deposited under ATCC accession number PTA-122432.
2. A method comprising isolating nucleic acids from the seed, plant, plant part, or cell of claim 1.
3. A maize seed produced by crossing the plant or plant part of claim 1 with a different maize plant.
4. A maize plant produced by growing the maize seed of claim 3.
5. A method for producing a second maize plant comprising applying plant breeding techniques to a first maize plant, or parts thereof, wherein said first maize plant is the maize plant of claim 4, and wherein application of said techniques results in the production of said second maize plant.
6. The method for producing a second maize plant of claim 5, wherein said breeding techniques comprise:
(a) crossing said first maize plant with itself or another maize plant to produce seed of a subsequent generation;
(b) harvesting and planting the seed of the subsequent generation to produce at least one plant of the subsequent generation; and
(c) repeating steps (a) and (b) for an additional 2-10 generations to produce the second maize plant.
7. The method for producing a second maize plant of claim 5, wherein said breeding techniques comprise:
(a) crossing said first maize plant with an inducer variety to produce haploid seed; and
(b) doubling the haploid seed to produce a second maize plant.
8. A seed, plant, plant part, or cell of inbred maize variety PH1C3S, representative seed of said variety having been deposited under ATCC accession number PTA-122432, further comprising a locus conversions wherein said seed of inbred maize variety PH1C3S further comprising a locus conversion produces a plant which otherwise has essentially the same phenotypic characteristics as PH1C3S listed in Table 1 when grown in the same environmental conditions.
9. The seed, plant, plant part, or cell of claim 8, wherein the locus conversion confers a trait selected from the group consisting of male sterility, site-specific recombination, abiotic stress tolerance, altered phosphorus, altered antioxidants, altered fatty acids, altered essential amino acids, altered carbohydrates, herbicide tolerance, insect resistance and disease resistance.
10. A method comprising isolating nucleic acids from the seed, plant, plant part, or cell of claim 8.
11. A maize seed produced by crossing the plant or plant part of claim 8 with a different maize plant.
12. A maize plant produced by growing the seed of claim 11.
13. A method for producing a second maize plant comprising applying plant breeding techniques to a first maize plant, or parts thereof, wherein said first maize plant is the maize plant of claim 12, and wherein application of said techniques results in production of said second maize plant.
14. The method for producing a second maize plant of claim 13, wherein said breeding techniques comprise:
(a) crossing said first maize plant with itself or another maize plant to produce seed of a subsequent generation;
(b) harvesting and planting the seed of the subsequent generation to produce at least one plant of the subsequent generation; and
(c) repeating steps (a) and (b) for an additional 2-10 generations to produce the second maize plant.
15. The method for producing a second maize plant of claim 13, wherein said breeding techniques comprise:
(a) crossing said first maize plant with an inducer variety to produce haploid seed; and
(b) doubling the haploid seed to produce the second maize plant.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A system for manufacturing a device, comprising:
means for patterning each of a plurality of beams using arrays of individually controllable elements;
means for projecting the patterned beams onto a substrate; and
means for displacing the substrate relative to the patterned beams, such that the patterned beams are scanned across the substrate in a predetermined scanning direction; and
means for directing the patterned beams towards the substrate using an array of lenses arranged such that each lens directs a respective part of a respective patterned beam towards a respective target area on the substrate,
means for arranging the projecting means in groups, such that each of the lenses in the arrays of lenses of different ones of the projecting means groups direct parts of different ones of the patterned beams to different areas of the substrate that are aligned in the scanning direction; and
means for spacing the projecting means groups apart in the scanning direction, such that each of the projecting means groups scans the patterned beams across the areas of the substrate as the substrate and the projection systems are displaced relative to each other, the respective areas scanned by the patterned beams from the projecting means groups that are adjacent to each other in the scanning direction are contiguous.
2. The system of claim 1, further comprising means for making the contiguous areas substantially rectangular.
3. The system of claim 2, further comprising:
means for distributing N of the projecting means groups in the scanning direction with a pitch of LN, where L is a length of the substrate.
4. The system of claim 1, further comprising:
means for spacing two of the projecting means groups apart in the scanning direction with a pitch of half of a length of the substrate; and
means for displacing the substrate relative to the projecting means groups, such that one half of the substrate is displaced across a full width of one of the projecting means groups and the other half of the substrate is displaced across the full width of the other the projecting means groups.
5. The system of claim 4, further comprising:
means for using two arrays of projecting means in each of the groups, the two arrays of projecting means of each the groups exposing a respective half of the substrate and each of the two arrays of the projecting means exposing alternate pixel areas in the scanning direction of the respective part of the substrate.
6. The system of claim 1, further comprising:
means for spacing three of the groups of the projecting means apart in the scanning direction with a pitch of one third of a length of the substrate; and
means for displacing the substrate relative to the groups, such that a respective one third of the substrate is displaced across a full width of each group.
7. The system of claim 1, wherein:
each of the contiguous areas has a generally rectangular main portion and at least one end portion extending in the scanning direction from the main portion, the at least one end portion of each of the contiguous areas having a saw-toothed shape with teeth of one of the at least one end portion overlapping teeth of the contiguous areas.
8. The system of claim 7, wherein each of the at least one end portion has a length in the scanning direction equal to a length in the scanning direction of each of the groups of the projecting means.
9. The system of claim 8, further comprising:
means for distributing N of the groups of the projecting means in the scanning direction with a pitch of (L+l)N, where in L is a length of the substrate and l is the length in the scanning direction of each of the groups of the projecting means.
10. The system of claim 1, further comprising:
means for displacing the substrate; and
means for making the projecting means stationary.
11. The system of claim 1, further comprising:
means for projecting spots of the patterned beams using each of the arrays of lenses to expose respective ones of the contiguous tracks on the surface of the substrate.
12. An apparatus comprising:
an array of individually controllable elements that pattern a plurality of beams of radiation;
a plurality of projection systems that project respective ones of the patterned beams onto a substrate, each including an array of lenses arranged so that each lens directs a part of the respective patterned beams towards a respective target area on the substrate; and
a displacement system that causes relative displacement between the substrate and the projection systems, such that the respective patterned beams are scanned across the substrate in a predetermined scanning direction,
wherein the projection systems are arranged in groups, such that lenses in the array of lenses of different groups direct parts of different ones of the patterned beams to different one of the respective target areas of the substrate that are aligned in the scanning direction,
wherein the groups are spaced apart in the scanning direction, such that each group scans the respective ones of the patterned beams across a respective area of the substrate as the substrate and the projection systems are displaced relative to each other, and
wherein the respective areas being scanned by the respective ones that are adjacent to each other in the scanning direction are contiguous.