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Mirror symmetry for two-parameter models, 1

We study, by means of mirror symmetry, the quantum geometry of the K\"ahler-class parameters of a number of Calabi-Yau manifolds that have $b_{11}=2$. Our main interest lies in the structure of the moduli space and in the loci corresponding to singular models. This structure is considerably ric...

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Detalles Bibliográficos
Autores principales: Candelas, Philip, De La Ossa, Xenia, Font, Anamaria, Katz, Sheldon H., Morrison, David R.
Lenguaje:eng
Publicado: 1994
Materias:
Acceso en línea:https://dx.doi.org/10.1016/0550-3213(94)90322-0
http://cds.cern.ch/record/268947
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author Candelas, Philip
De La Ossa, Xenia
Font, Anamaria
Katz, Sheldon H.
Morrison, David R.
author_facet Candelas, Philip
De La Ossa, Xenia
Font, Anamaria
Katz, Sheldon H.
Morrison, David R.
author_sort Candelas, Philip
collection CERN
description We study, by means of mirror symmetry, the quantum geometry of the K\"ahler-class parameters of a number of Calabi-Yau manifolds that have $b_{11}=2$. Our main interest lies in the structure of the moduli space and in the loci corresponding to singular models. This structure is considerably richer when there are two parameters than in the various one-parameter models that have been studied hitherto. We describe the intrinsic structure of the point in the (compactification of the) moduli space that corresponds to the large complex structure or classical limit. The instanton expansions are of interest owing to the fact that some of the instantons belong to families with continuous parameters. We compute the Yukawa couplings and their expansions in terms of instantons of genus zero. By making use of recent results of Bershadsky et al. we compute also the instanton numbers for instantons of genus one. For particular values of the parameters the models become birational to certain models with one parameter. The compactification divisor of the moduli space thus contains copies of the moduli spaces of one parameter models. Our discussion proceeds via the particular models $\P_4^{(1,1,2,2,2)}[8]$ and $\P_4^{(1,1,2,2,6)}[12]$. Another example, $\P_4^{(1,1,1,6,9)}[18]$, that is somewhat different is the subject of a companion paper.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1994
record_format invenio
spelling cern-2689472019-09-30T06:29:59Zdoi:10.1016/0550-3213(94)90322-0http://cds.cern.ch/record/268947engCandelas, PhilipDe La Ossa, XeniaFont, AnamariaKatz, Sheldon H.Morrison, David R.Mirror symmetry for two-parameter models, 1General Theoretical PhysicsWe study, by means of mirror symmetry, the quantum geometry of the K\"ahler-class parameters of a number of Calabi-Yau manifolds that have $b_{11}=2$. Our main interest lies in the structure of the moduli space and in the loci corresponding to singular models. This structure is considerably richer when there are two parameters than in the various one-parameter models that have been studied hitherto. We describe the intrinsic structure of the point in the (compactification of the) moduli space that corresponds to the large complex structure or classical limit. The instanton expansions are of interest owing to the fact that some of the instantons belong to families with continuous parameters. We compute the Yukawa couplings and their expansions in terms of instantons of genus zero. By making use of recent results of Bershadsky et al. we compute also the instanton numbers for instantons of genus one. For particular values of the parameters the models become birational to certain models with one parameter. The compactification divisor of the moduli space thus contains copies of the moduli spaces of one parameter models. Our discussion proceeds via the particular models $\P_4^{(1,1,2,2,2)}[8]$ and $\P_4^{(1,1,2,2,6)}[12]$. Another example, $\P_4^{(1,1,1,6,9)}[18]$, that is somewhat different is the subject of a companion paper.We study, by means of mirror symmetry, the quantum geometry of the K\"ahler-class parameters of a number of Calabi-Yau manifolds that have $b_{11}=2$. Our main interest lies in the structure of the moduli space and in the loci corresponding to singular models. This structure is considerably richer when there are two parameters than in the various one-parameter models that have been studied hitherto. We describe the intrinsic structure of the point in the (compactification of the) moduli space that corresponds to the large complex structure or classical limit. The instanton expansions are of interest owing to the fact that some of the instantons belong to families with continuous parameters. We compute the Yukawa couplings and their expansions in terms of instantons of genus zero. By making use of recent results of Bershadsky et al. we compute also the instanton numbers for instantons of genus one. For particular values of the parameters the models become birational to certain models with one parameter. The compactification divisor of the moduli space thus contains copies of the moduli spaces of one parameter models. Our discussion proceeds via the particular models $\P_4~{(1,1,2,2,2)}[8]$ and $\P_4~{(1,1,2,2,6)}[12]$. Another example, $\P_4~{(1,1,1,6,9)}[18]$, that is somewhat different is the subject of a companion paper.We study, by means of mirror symmetry, the quantum geometry of the Kähler-class parameters of a number of Calabi-Yau manifolds that have b 11 = 2. Our main interest lies in the structure of the moduli space and in the loci corresponding to singular models. This structure is considerably richer when there are two parameters than in the various one-parameter models that have been studied hitherto. We describe the intrinsic structure of the point in the (compactification of the) moduli space that corresponds to the large complex structure or classical limit. The instanton expansions are of interest owing to the fact that some of the instantons belong to families with continuous parameters. We compute the Yukawa couplings and their expansions in terms of instantons of genus zero. By making use of recent results of Bershadsky et al. we compute also the instanton numbers for instantons of genus one. For particular values of the parameters the models become birational to certain models with one parameter. The compactification divisor of the moduli space thus contains copies of the moduli spaces of one-parameter models. Our discussion proceeds via the particular models P 4 (1,1,2,2,2) [8] and P 4 (1,1,2,2,6) [12]. Another example, P 4 (1,1,1,6,9) [18], that is somewhat different is the subject of a companion paper.hep-th/9308083CERN-TH-6884-93UTTG-15-93NEIP-93-005OSU-M-93-1CERN-TH-6884-93NEIP-93-005UTTG-93-15oai:cds.cern.ch:2689471994
spellingShingle General Theoretical Physics
Candelas, Philip
De La Ossa, Xenia
Font, Anamaria
Katz, Sheldon H.
Morrison, David R.
Mirror symmetry for two-parameter models, 1
title Mirror symmetry for two-parameter models, 1
title_full Mirror symmetry for two-parameter models, 1
title_fullStr Mirror symmetry for two-parameter models, 1
title_full_unstemmed Mirror symmetry for two-parameter models, 1
title_short Mirror symmetry for two-parameter models, 1
title_sort mirror symmetry for two-parameter models, 1
topic General Theoretical Physics
url https://dx.doi.org/10.1016/0550-3213(94)90322-0
http://cds.cern.ch/record/268947
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AT delaossaxenia mirrorsymmetryfortwoparametermodels1
AT fontanamaria mirrorsymmetryfortwoparametermodels1
AT katzsheldonh mirrorsymmetryfortwoparametermodels1
AT morrisondavidr mirrorsymmetryfortwoparametermodels1